NZ524122A - Phenylalanine derivatives useful as pharmaceutical agents - Google Patents

Phenylalanine derivatives useful as pharmaceutical agents

Info

Publication number
NZ524122A
NZ524122A NZ524122A NZ52412201A NZ524122A NZ 524122 A NZ524122 A NZ 524122A NZ 524122 A NZ524122 A NZ 524122A NZ 52412201 A NZ52412201 A NZ 52412201A NZ 524122 A NZ524122 A NZ 524122A
Authority
NZ
New Zealand
Prior art keywords
group
substituted
ring
lower alkyl
atom
Prior art date
Application number
NZ524122A
Inventor
Shingo Makino
Tatsuya Okuzumi
Toshihiko Yoshimura
Yuko Satake
Nobuyasu Suzuki
Hiroyuki Izawa
Kazuyuki Sagi
Akira Chiba
Eiji Nakanishi
Masahiro Murata
Takashi Tsuji
Original Assignee
Ajinomoto Kk
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Ajinomoto Kk filed Critical Ajinomoto Kk
Publication of NZ524122A publication Critical patent/NZ524122A/en

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D239/00Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings
    • C07D239/02Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings not condensed with other rings
    • C07D239/20Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings not condensed with other rings having two double bonds between ring members or between ring members and non-ring members
    • C07D239/22Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings not condensed with other rings having two double bonds between ring members or between ring members and non-ring members with hetero atoms directly attached to ring carbon atoms
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P1/00Drugs for disorders of the alimentary tract or the digestive system
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P1/00Drugs for disorders of the alimentary tract or the digestive system
    • A61P1/04Drugs for disorders of the alimentary tract or the digestive system for ulcers, gastritis or reflux esophagitis, e.g. antacids, inhibitors of acid secretion, mucosal protectants
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P11/00Drugs for disorders of the respiratory system
    • A61P11/06Antiasthmatics
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P17/00Drugs for dermatological disorders
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P17/00Drugs for dermatological disorders
    • A61P17/06Antipsoriatics
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P19/00Drugs for skeletal disorders
    • A61P19/02Drugs for skeletal disorders for joint disorders, e.g. arthritis, arthrosis
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P25/00Drugs for disorders of the nervous system
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P29/00Non-central analgesic, antipyretic or antiinflammatory agents, e.g. antirheumatic agents; Non-steroidal antiinflammatory drugs [NSAID]
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P29/00Non-central analgesic, antipyretic or antiinflammatory agents, e.g. antirheumatic agents; Non-steroidal antiinflammatory drugs [NSAID]
    • A61P29/02Non-central analgesic, antipyretic or antiinflammatory agents, e.g. antirheumatic agents; Non-steroidal antiinflammatory drugs [NSAID] without antiinflammatory effect
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P3/00Drugs for disorders of the metabolism
    • A61P3/08Drugs for disorders of the metabolism for glucose homeostasis
    • A61P3/10Drugs for disorders of the metabolism for glucose homeostasis for hyperglycaemia, e.g. antidiabetics
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents
    • A61P35/04Antineoplastic agents specific for metastasis
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/02Immunomodulators
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/02Immunomodulators
    • A61P37/06Immunosuppressants, e.g. drugs for graft rejection
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/08Antiallergic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P43/00Drugs for specific purposes, not provided for in groups A61P1/00-A61P41/00
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P9/00Drugs for disorders of the cardiovascular system
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P9/00Drugs for disorders of the cardiovascular system
    • A61P9/02Non-specific cardiovascular stimulants, e.g. drugs for syncope, antihypotensives
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P9/00Drugs for disorders of the cardiovascular system
    • A61P9/10Drugs for disorders of the cardiovascular system for treating ischaemic or atherosclerotic diseases, e.g. antianginal drugs, coronary vasodilators, drugs for myocardial infarction, retinopathy, cerebrovascula insufficiency, renal arteriosclerosis
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D239/00Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings
    • C07D239/02Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings not condensed with other rings
    • C07D239/24Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings not condensed with other rings having three or more double bonds between ring members or between ring members and non-ring members
    • C07D239/28Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings not condensed with other rings having three or more double bonds between ring members or between ring members and non-ring members with hetero atoms or with carbon atoms having three bonds to hetero atoms with at the most one bond to halogen, directly attached to ring carbon atoms
    • C07D239/46Two or more oxygen, sulphur or nitrogen atoms
    • C07D239/52Two oxygen atoms
    • C07D239/54Two oxygen atoms as doubly bound oxygen atoms or as unsubstituted hydroxy radicals
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D239/00Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings
    • C07D239/70Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings condensed with carbocyclic rings or ring systems
    • C07D239/72Quinazolines; Hydrogenated quinazolines
    • C07D239/78Quinazolines; Hydrogenated quinazolines with hetero atoms directly attached in position 2
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D239/00Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings
    • C07D239/70Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings condensed with carbocyclic rings or ring systems
    • C07D239/72Quinazolines; Hydrogenated quinazolines
    • C07D239/78Quinazolines; Hydrogenated quinazolines with hetero atoms directly attached in position 2
    • C07D239/80Oxygen atoms
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D239/00Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings
    • C07D239/70Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings condensed with carbocyclic rings or ring systems
    • C07D239/72Quinazolines; Hydrogenated quinazolines
    • C07D239/86Quinazolines; Hydrogenated quinazolines with hetero atoms directly attached in position 4
    • C07D239/88Oxygen atoms
    • C07D239/91Oxygen atoms with aryl or aralkyl radicals attached in position 2 or 3
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D239/00Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings
    • C07D239/70Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings condensed with carbocyclic rings or ring systems
    • C07D239/72Quinazolines; Hydrogenated quinazolines
    • C07D239/95Quinazolines; Hydrogenated quinazolines with hetero atoms directly attached in positions 2 and 4
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D239/00Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings
    • C07D239/70Heterocyclic compounds containing 1,3-diazine or hydrogenated 1,3-diazine rings condensed with carbocyclic rings or ring systems
    • C07D239/72Quinazolines; Hydrogenated quinazolines
    • C07D239/95Quinazolines; Hydrogenated quinazolines with hetero atoms directly attached in positions 2 and 4
    • C07D239/96Two oxygen atoms
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D253/00Heterocyclic compounds containing six-membered rings having three nitrogen atoms as the only ring hetero atoms, not provided for by group C07D251/00
    • C07D253/08Heterocyclic compounds containing six-membered rings having three nitrogen atoms as the only ring hetero atoms, not provided for by group C07D251/00 condensed with carbocyclic rings or ring systems
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D265/00Heterocyclic compounds containing six-membered rings having one nitrogen atom and one oxygen atom as the only ring hetero atoms
    • C07D265/041,3-Oxazines; Hydrogenated 1,3-oxazines
    • C07D265/121,3-Oxazines; Hydrogenated 1,3-oxazines condensed with carbocyclic rings or ring systems
    • C07D265/141,3-Oxazines; Hydrogenated 1,3-oxazines condensed with carbocyclic rings or ring systems condensed with one six-membered ring
    • C07D265/241,3-Oxazines; Hydrogenated 1,3-oxazines condensed with carbocyclic rings or ring systems condensed with one six-membered ring with hetero atoms directly attached in positions 2 and 4
    • C07D265/26Two oxygen atoms, e.g. isatoic anhydride
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D285/00Heterocyclic compounds containing rings having nitrogen and sulfur atoms as the only ring hetero atoms, not provided for by groups C07D275/00 - C07D283/00
    • C07D285/15Six-membered rings
    • C07D285/16Thiadiazines; Hydrogenated thiadiazines
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D285/00Heterocyclic compounds containing rings having nitrogen and sulfur atoms as the only ring hetero atoms, not provided for by groups C07D275/00 - C07D283/00
    • C07D285/15Six-membered rings
    • C07D285/16Thiadiazines; Hydrogenated thiadiazines
    • C07D285/181,2,4-Thiadiazines; Hydrogenated 1,2,4-thiadiazines
    • C07D285/201,2,4-Thiadiazines; Hydrogenated 1,2,4-thiadiazines condensed with carbocyclic rings or ring systems
    • C07D285/221,2,4-Thiadiazines; Hydrogenated 1,2,4-thiadiazines condensed with carbocyclic rings or ring systems condensed with one six-membered ring
    • C07D285/241,2,4-Thiadiazines; Hydrogenated 1,2,4-thiadiazines condensed with carbocyclic rings or ring systems condensed with one six-membered ring with oxygen atoms directly attached to the ring sulfur atom
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D401/00Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom
    • C07D401/02Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom containing two hetero rings
    • C07D401/12Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom containing two hetero rings linked by a chain containing hetero atoms as chain links
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D471/00Heterocyclic compounds containing nitrogen atoms as the only ring hetero atoms in the condensed system, at least one ring being a six-membered ring with one nitrogen atom, not provided for by groups C07D451/00 - C07D463/00
    • C07D471/02Heterocyclic compounds containing nitrogen atoms as the only ring hetero atoms in the condensed system, at least one ring being a six-membered ring with one nitrogen atom, not provided for by groups C07D451/00 - C07D463/00 in which the condensed system contains two hetero rings
    • C07D471/04Ortho-condensed systems
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D475/00Heterocyclic compounds containing pteridine ring systems
    • C07D475/02Heterocyclic compounds containing pteridine ring systems with an oxygen atom directly attached in position 4
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D487/00Heterocyclic compounds containing nitrogen atoms as the only ring hetero atoms in the condensed system, not provided for by groups C07D451/00 - C07D477/00
    • C07D487/02Heterocyclic compounds containing nitrogen atoms as the only ring hetero atoms in the condensed system, not provided for by groups C07D451/00 - C07D477/00 in which the condensed system contains two hetero rings
    • C07D487/04Ortho-condensed systems
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P20/00Technologies relating to chemical industry
    • Y02P20/50Improvements relating to the production of bulk chemicals
    • Y02P20/582Recycling of unreacted starting or intermediate materials

Abstract

Phenylalanine derivatives of general formula (1) and pharmaceutically acceptable salts thereof; an alpha 4 integrin antagonist containing a phenylalanine derivative of formula (1); and a therapeutic agent or preventive agent for inflammatory diseases such as rheumatoid arthritis, inflammatory bowel disease, systemic lupus erythematosus, multiple sclerosis, Sjögren's syndrome, asthma, psoriasis, allergy, diabetes, cardiovascular disease, arterial sclerosis, restenosis, tumor proliferation, tumor metastasis and transplant rejection.

Description

<div class="application article clearfix" id="description"> <p class="printTableText" lang="en">New Zealand Paient Spedficaiion for Paient Number 524122 <br><br> 524122 <br><br> SPECIFICATION <br><br> PHENYLALANINE DERIVATIVES USEFUL AS PHARMACEUTICAL AGENTS <br><br> Background of the Invention <br><br> The present invention relates to new phenylalanine derivatives and the use of the phenylalanine derivatives as medicines. The present invention also relates to the compounds usable as therapeutic agents or preventive agents for inflammatory diseases in which a 4 integrin-depending adhesion process participates in the pathology. It was reported that a 4 integrins participate in rheumatoid arthritis, inflammatory bowel diseases, systemic lupus erythematosus, multiple sclerosis, Sjogren's syndrome, asthma, psoriasis, allergy, diabetes, cardiovascular diseases, arterial sclerosis, restenosis, tumor proliferation, tumor metastasis and transplantation rejection. The compounds of the present invention having an antagonistic effect on the a 4 integrins are usable as therapeutic agents or preventive agents for the above-described diseases. <br><br> In the inflammatory reactions, it is generally understood that when a microorganism invades a tissue or when the tissue is injured, leukocytes play an important role for the exclusion of the microorganism or for the repair of the injured tissue. It is also widely understood that in such cases, leukocytes usually circulating in the blood must pass through the vascular wall and be newly supplied to the injured tissue. It has been elucidated that the infiltration of the leukocytes from the blood vessel into the tissue is carried out by integrin molecules which are a <br><br> INTELLECTUAL KHOPERTY OFFICE" <br><br> OF N.Z. <br><br> 1 - 1 DEC 2004 <br><br> group of heterodimeric proteins expressing on the leukocytes. The integrin molecules are classified into at least 8 subfamilies (j3 1 through j3 8 subfamilies) depending on the j3 chains thereof. Known typical subfamilies are j3 1 and ]3 3 subfamilies involved in the adhesion of cell ingredients to the extracellular matrix such as collagen and fibronectin; j3 2 subfamily involved in cell-to-cell adhesion in the immune system; and j3 7 subfamily which mainly participates in the infiltration of leukocytes into mucosal tissues (Shimizu et al., Adv. Immunol. 72: 325-380, 1999). As for the above-described a 4 integrins, two kinds of molecules thereof are known. They are VLA-4 (very late antigen-4) molecule belonging to the /3 1 subfamily and comprising a 4j3 1 chain and LPAM-1 (lymphocyte Peyer's patch HEV adhesion molecule-1) molecule belonging to the ]3 7 subfamily and comprising a 4 j3 7 chain. Usually most of leukocytes circulating in the blood have only a low adhesion affinity for the vascular-endothelium cells and they cannot move out of the blood vessel. However, lymphocytes mainly comprising T cells and B cells are capable of moving out of the blood vessel by a so-called lymphocyte homing phenomenon wherein they move from the blood into the lymphoid tissue through the blood vessel wall and then they return into the blood through the lymphatic vessel under the physiological conditions. It is known that LPAM-1 molecules participate in the lymphocyte homing into the lymphoid tissue of an intestinal tract such as Peyer's patch (Butcher et al., Adv. Immunol. 72: 209-253, 1999). On the other hand, when an inflammation occurs, the vascular-endothelium cells are activated by cytokine and chemokine released from the inflamed tissue, the expression of a group of cell surface antigens (adhesion molecules) participating in <br><br> the adhesion of leukocytes to the vascular-endothelium cells is caused, and a lot of leukocytes infiltrate out of the blood vessel toward the inflamed tissue through the adhesion molecules. <br><br> As the cell surface antigens on the vascular-endothelium cells 5 participating in the adhesion of the leukocytes, there have been known E-selectin (adhesion molecule mainly participating in the adhesion of neutrophils), ICAM-1 and VCAM-1 mainly participating in the adhesion of lymphocytes, and MAdCAM-1 mainly participating in the adhesion of lymphocytes in the lymphoid tissue of an intestinal tract such as Peyer's 10 patch (Shimizu et al., Adv. Immunol. 72: 325-380, 1999). It was reported that in those adhesion molecules, VCAM-1 acts as a ligand of both VLA-4 and LPAM-1 and that MAdCAM-1 acts as the ligand of LPAM-1. As a ligand of both VLA-4 and LPAM-1, fibronectin which is a kind of extracellular matrix is also known (Shimizu et al., Adv. Immunol. 72: 15 325-380, 1999). The j3 1 integrin subfamily to which VLA-4 belongs comprises at least 6 integrins (VLA-1 to VLA-6) using extracellular matrixes such as fibronectin, collagen and laminin as the ligands. Many of integrins using extracellular matrixes as the ligands, such as VLA-5, j3 3 subfamily and/3 5 subfamily, recognize arginine — glycine - aspartic 20 acid (RGD) sequence in fibronectin, vitronectin, tenascin and osteopontin. On the other hand, in the interaction of VLA-4 and fibronectin, the RGD sequence does not participate but a CS-1 peptide segment comprising leucine - aspartic acid - valine (LDV) as the core sequence participates (Pulido et al., J. Biol. Chem. 266: 10241-10245, 1991). Clements et al. 25 found a sequence similar to LDV in amino acid sequences of VCAM-1 and MAdCAM-1. It has been elucidated that a variant obtained by partially <br><br> 3 <br><br> modifying the CS-l-like sequence of VCAM-1 and MAdCAM-1 molecules cannot interact to VLA-4 or LPAM-1 (Clements et al., J. Cell Sci. 107: 2127-2135, 1994, Vonderheide et al., J. Cell. Biol. 125: 215-222, 1994, Renz et al., J. Cell. Biol. 125: 1395-1406, 1994, and Kilger et al., Int. <br><br> 5 Immunol. 9: 219-226, 1997). Thus, it was found that the CS-l-like sequence is important for the interaction of VLA-4/LPAM-1 and VCAM-1/MAdCAM-l. <br><br> It was also reported that the cyclic peptide having the CS-l-like structure is antagonistic both to the interaction of VLA-4 or LPAM-1 with 10 VCAM-1, MAdCAM-1 or CS-1 peptide (Vanderslice et al., J. Immunol. 158: 1710-1718, 1997). The above-described facts indicate that all the interactions of a 4 integrin and VCAM-1, MAdCAM-1 or fibronectin can be blocked by using a suitable a 4 integrin antagonist (the term "a 4 integrin antagonist" in the specification indicates a substance 15 antagonistic to a 4 j3 1 and/or a 4 j3 7 integrin). <br><br> It is also known that the expression of VCAM-1 in vascular-endothelium cells is caused by inflammatory factors such as LPS, TNF-a or IL-1 and that when the inflammation occurs, the infiltration of the leukocytes from the blood vessel into the tissue is carried out by the 20 VLA-4/VCAM-1 adhesion mechanism (Elices, Cell 60: 577-584, 1990, Osborn et al., Cell 59: 1203-1211, 1989 and Issekutz et al., J. Eex. Med. 183: 2175-2184, 1996). Because VLA-4 is expressed on the surfaces of activated lymphocytes, monocytes, eosinophils, mast cells and neutrophils, the adhesion mechanism of VLA-4/VCAM-1 plays an 25 important role for the infiltration of those cells into the inflamed tissue. It was reported that VLA-4 is expressed on various sarcoma cells such as <br><br> 4 <br><br> melanoma cells, and it was also elucidated that the adhesion mechanism of VLA-4/VCAM-1 participates in the metastasis of these tumors. By investigating the expression of VCAM-1 in various pathological tissues, it was made apparent that the adhesion mechanism of this VLA-4/VCAM-1 5 participates in various pathological stages. Namely, it was reported that in addition to the activated vascular-endothelium cells, the expression of VCAM-1 is increased in the inflamed tissues in the patients with autoimmune diseases such as rheumatoid synovial membrane (van Dinther-Janssen, J. Immunol. 147: 4207-4210, 1991 and Morales-Ducret 10 et al., J. Immunol. 149: 1424-1431, 1992), lungs and respiratory tract epithelium in asthma (ten Hacken et al., Clin. Exp. Allergy 12: 1518-1525, 1998) and allergic diseases (Randolph et al., J. Clin. Invest. 104: 1021-1029, 1999), systemic lupus erythematosus (Takeuchi et al., J. Clin. Invest. 92: 3008-3016, 1993), Sjogren's syndrome (Edwards et al., Ann. 15 Rheum. Dis. 52: 806-811, 1993), multiple sclerosis (Steffen et al., Am. J. Pathol. 145: 189-201, 1994) and psoriasis (Groves et al., J. Am. Acad. Dermatol. 29: 67-72, 1993); atherosclerotic plagues (O'Brien et al., J. Clin. Invest. 92: 945-951, 1993), intestinal tissues of the patients with inflammatory bowel diseases such as Crohn's disease and ulcerative 20 colitis (Koizumi et al., Gastroenterol. 103: 840-847, 1992 and Nakamura et al., Lab. Invest. 69: 77-85, 1993), inflamed tissue of Langerhans island of patients with diabetes (Martin et al., J. Autoimmun. 9: 637-643, 1996) and implants during the rejection of transplantation of heart or kidney (Herskowitz et al. Am. J. Pathol. 145: 1082-1094, 1994 and Hill et al., 25 Kidney Int. 47: 1383-1391, 1995). The adhesion mechanism of VLA-4/VCAM-l participates in these various diseases. <br><br> 5 <br><br> There are many reports showing that in vivo administration of VLA-4 or VCAM-1 antibody was effective in improving the diseases of animal models with those inflammatory diseases. Concretely, Yednock et al. and Baron et al. reported that the in vivo administration of an 5 antibody against a 4 integrins was effective in controlling the incidence rate or in controlling encephalomyelitis in the experimental autoimmune encephalomyelitis models, i. e. multiple sclerosis models (Yednock et al., Nature 356: 63-66, 1992 and Baron et al., J. Exp. Med. 177: 57-68, 1993). Zeidler et al. reported that in vivo administration of an antibody against 10 a 4-integrin was effective in controlling the incidence rate of mouse collagen arthritis (rheumatoid models) (Zeidler et al., Autoimmunity 21: 245-252, 1995). The therapeutic effect of an antibody against a 4-integrin in asthma models was reported by Abraham et al. and Sagara et al. (Abraham et al., J. Clin. Invest. 93: 776-787, 1994 and Sagara et al., 15 Int. Arch. Allergy Immunol. 112: 287-294, 1997). The effect of an antibody against a 4-integrin in inflammatory bowel disease models was reported by Podolsky et al. (Podolsky et al., J. Clin. Invest. 92: 372-380, 1993). The effect of an antibody against a 4-integrin and that against VCAM antibody in insulin-dependent diabetes models were reported by 20 Baron et al. (Baron et al., J. Clin. Invest. 93: 1700-1708, 1994). It was made apparent with baboon models that the restenosis of a blood vessel after an angioplasty carried out because of arteriosclerosis can be inhibited by the administration of a 4 integrin antibody (Lumsden et al., J. Vase. Surg. 26: 87-93, 1997). It was also reported thata4 integrin or 25 VCAM antibody is effective in inhibiting the rejection of an implant or inhibiting metastasis of a cancer (Isobe et al., J. Immunol. 153: 5810-5818, <br><br> 6 <br><br> 1994 and Okahara et al., Cancer Res. 54: 3233-3236, 1994). <br><br> As described above, unlike VCAM-1, MAdCAM-1 which is a ligand of LPAM-1 is constitutively expressed on high endothelial venules (HEV) in the intestinal mucosa, mesenteric lymphatic nodes, Peyer's patch and 5 spleen and it participates in the homing of mucosal lymphocytes. It is also known that LPAM-1/MAdCAM-1 adhesion mechanism not only has physiological roles in the homing of the lymphocytes but also participates in some pathological processes. Briskin et al reported an increase in the expression of MAdCAM-1 in inflamed regions in intestinal tracts of 10 patients with inflammatory bowel diseases such as Crohn's disease and ulcerative colitis (Briskin et al., Am. J. Pathol. 151: 97-110, 1997). Hanninen et al. reported that induction of the expression is observed in an inflamed tissue of Langerhans island of NOD mouse which is a model of an insulin-dependent diabetes (Hanninen et al., J. Immunol. 160: 15 6018-6025, 1998). The fact that LPAM-1/MAdCAM-1 adhesion mechanism participates in the progress of diseases is apparent from the fact that conditions of mouse models with inflammatory bowel disease (Picarella et al., J. Immunol. 158: 2099-2106, 1997) and the above-described NOD mouse models are improved by the in vivo administration 20 of antibody to MAdCAM or antibody to j3 7 integrin (Hanninen et al., J. Immunol. 160: 6018-6025, 1998 and Yang et al., Diabetes 46: 1542-1547, 1997). <br><br> The above-described facts indicate the possibility in that employing the blocking of VLA-4/VCAM-1, LPAM-l/VCAM-1 or LPAM-25 1/MAdCAM-l adhesion mechanism by a suitable antagonist is effective in treating the chronic inflammatory diseases described above. The use of <br><br> 7 <br><br> the antibody against VLA-4 as the VLA-4 antagonist is described in WO 93/13798, WO 93/15764, WO 94/16094 and WO 95/19790. Peptide compounds as VLA-4 antagonists are described in WO 94/15958, WO 95/15973, WO 96/00581 and WO 96/06108. Amino acid derivatives usable as VLA-4 antagonists are described in WO 99/10312, WO 99/10313, WO 99/36393, WO 99/37618 and WO 99/43642. However, none of them is practically used for the therapeutic treatment at present because of the lack of oral bioavailability and immunogenic properties during the use of them for a long period of time. <br><br> Disclosure of the Invention <br><br> An object of the present invention is to provide new compounds having a 4 integrin antagonistic effect. <br><br> Another object of the present invention is to provide the compounds having a 4 integrin antagonistic effect, which can be administered orally. <br><br> Still another object of the present invention is to provide a 4 integrin antagonists. <br><br> A further object of the present invention is to provide a pharmaceutical composition containing such new compounds. <br><br> An additional object of the present invention is to provide therapeutic agents or preventive agents for diseases in which a 4 integrin-depending adhesion process participates in the pathology, such as inflammatory diseases, rheumatoid arthritis, inflammatory bowel diseases, systemic lupus erythematosus, multiple sclerosis, Sjogren's syndrome, asthma, psoriasis, allergy, diabetes, cardiovascular diseases, <br><br> 8 <br><br> arterial sclerosis, restenosis, tumor proliferation, tumor metastasis and transplantation rejection. <br><br> The above objects of the invention are each to be read with the alternative object of to at least provide a useful choice. <br><br> For the purpose of solving the above-described problems, the inventors have synthesized various phenylalanine derivatives and examined a 4 integrin antagonistic activities thereof, and the inventors have found that specified, new phenylalanine derivatives have an excellent a 4 integrin antagonistic activity. The present invention has been completed on the basis of this finding. <br><br> Namely, the present invention provides phenylalanine derivatives of the following general formula (1) and pharmaceutically acceptable salts thereof: <br><br> J <br><br> D^N <br><br> C O <br><br> (1) <br><br> wherein A represents one of the following general formulae (2), (3), (3-1) or (3-2): <br><br> INTELLECTUAL PROPERTY OFFICE OF N.Z. <br><br> * I DEC 2004 RECEIVED <br><br> &lt;*YT\3 R2^R3 «*W83 f <br><br> N^R4 ^R4R,^-VR3 <br><br> un-v &lt;y y %'v <br><br> (2) (3) (3"° (3-2) <br><br> wherein Arm represents a cyclic alkyl group or an aromatic ring containing 0, 1, 2, 3 or 4 hetero atoms selected from the group consisting of oxygen, sulfur and nitrogen atoms, <br><br> the composite line of solid line and dotted line in the formula (3-2) 5 represents a single bond or a double bond, <br><br> U, V and X represent C(=0), S(=0)2, C(-R5)(-R6), C(=C(R5)(R6)), C(=S), S(=0), P(=0)(-0H) or P(-H)(=0), <br><br> W represents C(-R7) or a nitrogen atom, <br><br> Rl, R2, R3, R4 R5, R6and R7 may be the same or different from one 10 another and each represent a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a substituted lower alkyl group, a lower alkenyl group, a substituted lower alkenyl group, a lower alkynyl group, a substituted lower alkynyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, an aryl group, a heteroaryl group, a 15 lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with an aryl group(s), a lower alkyl group substituted with a heteroaryl group(s), a lower alkoxyl group, a lower alkylthio group, a lower alkoxyl group and lower alkylthio group substituted with a 20 cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, <br><br> 10 <br><br> a lower alkoxyl group and lower alkylthio group substituted with an aryl group(s), a lower alkoxyl group and lower alkylthio group substituted with a heteroaryl group(s), a cycloalkyloxy group which may contain a hetero atom(s) in the ring thereof, an aryloxy group, a heteroaryloxy group, a lower hydroxyalkyl group, a lower hydroxyalkenyl group, a lower hydroxylalkoxyl group, a lower halogenoalkyl group, a lower halogeno alkoxyl group, a lower halogenoalkylthio group, a lower halogenoalkenyl group, nitro group, cyano group, a substituted or unsubstituted amino group, carboxyl group, a lower alkyloxycarbonyl group, a substituted or unsubstituted carbamoyl group, a lower alkanoyl group, an aroyl group, a lower alkylsulfonyl group, a substituted or unsubstituted sulfamoyl group or an ammonium group, R5 and R6 may be bonded together to form a ring which may contain one or two oxygen, nitrogen or sulfur atoms, B represents a hydroxyl group, a lower alkoxyl group or hydroxylamino group, <br><br> C represents a hydrogen atom, a lower alkyl group, a lower alkenyl group, a lower alkynyl group, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with an aryl group(s) or a lower alkyl group substituted with a heteroaryl group(s), <br><br> D represents a lower alkyl group, a lower alkenyl group, a lower alkynyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, an aryl group, a heteroaryl group, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with an aryl group(s), a lower alkyl group substituted with a heteroaryl group(s), a lower alkoxyl group, <br><br> 11 <br><br> a lower alkoxyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group substituted with an aryl group(s), a lower alkoxyl group substituted with a heteroaryl group(s), a cycloalkyloxy group which may contain a hetero atom(s) in the ring thereof, an aryloxy group, a heteroaryloxy group, a lower hydroxy alkyl group, a lower hydroxy alkenyl group, a lower hydroxy alkoxyl group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkenyl group, nitro group, cyano group, a substituted or unsubstituted amino group, carboxyl group, a lower alkyloxycarbonyl group, a substituted or unsubstituted carbamoyl group, a lower alkanoyl group, an aroyl group, a lower alkylthio group, a lower alkylsulfonyl group or a substituted or unsubstituted sulfamoyl group, <br><br> C and D may be bonded together to form a ring which may contain one or two oxygen, nitrogen or sulfur atoms, <br><br> T represents an interatomic bond, C(=0), C(=S), S(=0), S(=0)2, N(H)-C(=0), or N(H)-C(=S), <br><br> J and J' may be the same or different from each other and each represent a hydrogen atom, a halogen atom, a lower alkyl group, a lower alkyloxy group or nitro group, <br><br> provided that the phenylalanine derivatives of the general formula (1) do not include compounds having the following formula (A-1) or (A-2) when A represents the formula (3-2). <br><br> 12 <br><br> (A-1) (A-2) <br><br> The present invention provides an a 4 integrin antagonist containing the above-described phenylalanine derivative or a pharmaceutically acceptable salt thereof as the active ingredient. <br><br> The present invention also provides a pharmaceutical composition containing the above-described phenylalanine derivative or a pharmaceutically acceptable salt thereof. <br><br> The present invention further provides a therapeutic agent or preventive agent, containing the phenylalanine derivative or a pharmaceutically acceptable salt thereof as the active ingredient, for diseases in which a 4 integrin-depending adhesion process participates in the pathology, such as inflammatory diseases, rheumatoid arthritis, inflammatory bowel diseases, systemic lupus erythematosus, multiple sclerosis, Sjogren's syndrome, asthma, psoriasis, allergy, diabetes, cardiovascular diseases, arterial sclerosis, restenosis, tumor proliferation, tumor metastasis and transplantation rejection. <br><br> Best Mode for Carrying Out the Invention <br><br> The term "lower" in, for example, a lower alkyl group in the present specification indicates that the group has 1 to 6 carbon atoms and <br><br> 13 <br><br> Si preferably 1 to 4 carbon atoms. Alkyl groups, alkenyl groups and alkynyl groups in alkyl groups, alkenyl groups, alkynyl groups, alkoxyl groups, alkylthio groups, alkanoyl groups, alkylamino groups and the like may be either linear or branched. Examples of these alkyl groups are 5 methyl group, ethyl group, propyl group, isopropyl group, butyl group, secondary butyl group, tertiary butyl group, pentyl group and hexyl group. It is preferable that the alkyl groups have 1 to 6 carbon atoms and more preferable that the groups have 1 to 4 carbon atoms. The alkenyl groups are, for example, vinyl group, propenyl group, butenyl group and pentenyl 10 group. It is preferable that the alkenyl groups have 2 to 6 carbon atoms and more preferable that the groups have 2 to 4 carbon atoms. • The alkynyl groups include ethynyl group, propynyl group and butynyl group. It is preferable that the alkenyl groups have 2 to 8 carbon atoms and more preferable that the groups have 2 to 4 carbon atoms. The cycloalkyl 15 groups indicate substituted or unsubstituted cycloalkyl groups such as cyclopropyl group, cyclobutyl group, cyclopentyl group, cyclohexyl group, norbornyl group, adamantyl group and cyclohexenyl group. It is preferable that the cycloalkyl groups have 3 to 8 carbon atoms and more preferable that the groups have 3 to 5 carbon atoms. The alkoxyl groups 20 include methoxyl group, ethoxyl group, propyloxy group, isopropyloxy group, etc. It is preferable that the alkoxyl groups have 1 to 6 carbon atoms and more preferable that the groups have 1 to 4 carbon atoms. The hetero atoms include nitrogen, oxygen, sulfur, etc. The halogen atoms are fluorine, chlorine, bromine and iodine. The halogenoalkyl 25 groups include chloromethyl group, trichloromethyl group, trifluoromethyl group, trifluoroethyl group, pentafluoromethyl group, etc. <br><br> 14 <br><br> The halogenoalkoxyl groups include trichloromethoxyl group, trifluoromethoxyl group, etc. The hydroxy alkyl groups include hydroxy methyl group, hydroxyethyl group, etc. The cycloalkyl groups which may contain a hetero atom(s) in the ring thereof may be either 5 substituted or unsubstituted. Examples of them include cyclopentyl group, cyclohexyl group, piperidyl group, piperazinyl group, morpholinyl group, pyrrolidinyl group, tetrahydrofuranyl group and uracil group, which are 4-to-8-membered cyclic group, preferably, 5-to-7-membered cyclic group. <br><br> 10 In the present specification, the aryl groups are both substituted and unsubstituted aryl groups such as phenyl group, 1-naphthyl group and 2-naphthyl group. They are preferably phenyl group and substituted phenyl group, and the substituents are particularly preferably halogen atoms, alkoxyl groups, alkyl groups, hydroxyl group, 15 halogenoalkyl groups and halogenoalkoxyl groups. The heteroaryl groups are both substituted and unsubstituted heteroaryl groups such as pyridyl group, pyrazyl group, pyrimidinyl group, pyrazolyl group, pyrrolyl group, triazyl group, furyl group, thienyl group, isoxazolyl group, isothiazolyl group, indolyl group, quinolyl group, isoquinolyl group and 20 benzimidazolyl group. Preferred heteroaryl groups are pyridyl group, pyrazyl group, pyrimidinyl group, furyl group, thienyl group and substituted pyridyl, furyl and thienyl groups. Particularly preferred substituents are halogen atoms, alkoxyl groups, alkyl groups, hydroxyl group, halogenoalkyl groups and halogenoalkoxyl groups. The lower 25 alkyl groups substituted with an aryl group(s) include, for example, substituted or unsubstituted benzyl groups and substituted or <br><br> 15 <br><br> unsubstituted phenethyl groups. Particularly preferred substituents are halogen atoms, alkoxyl groups, alkyl groups, hydroxyl group, halogenoalkyl groups and halogenoalkoxyl groups. The lower alkyl groups substituted with a heteroaryl group(s) include, for example, pyridylmethyl group, and particularly preferred substituents thereof are halogen atoms, alkoxyl groups, alkyl groups, hydroxyl group, halogenoalkyl groups and halogenoalkoxyl groups. The alkanoyl groups include, for example, formyl groups, acetyl groups, propanoyl group, butanoyl group and pivaloyl group. The aroyl groups include, for example, substituted or unsubstituted benzoyl group and pyridylcarbonyl group, and the substituents thereof are particularly preferably halogen atoms, alkoxyl groups, alkyl groups, hydroxyl group, halogenoalkyl groups and halogenoalkoxyl groups. The halogenoalkanoyl groups include, for example, trichloroacetyl group and trifluoroacetyl group. The alkylsulfonyl groups include, for example, methanesulfonyl group, ethanesulfonyl group, etc. The arylsulfonyl groups include, for example, benzenesulfonyl group and p-toluenesulfonyl group. The heteroarylsulfonyl groups include, for example, pyridylsulfonyl group. The halogenoalkylsulfonyl groups include, for example, trifluoromethanesulfonyl group. The alkyloxycarbonyl groups include, for example, methoxycarbonyl group, ethoxycarbonyl group and tert-butoxycarbonyl group. The aryl-substituted alkoxycarbonyl groups include, for example, benzyloxycarbonyl group and 9-fluorenylmethoxycarbonyl group. The substituted carbamoyl groups include, for example, methylcarbamoyl group, phenylcarbamoyl group and substituted phenylcarbamoyl group, and the substituents thereof are <br><br> 16 <br><br> particularly preferably halogen atoms, alkoxyl groups, alkyl groups, hydroxyl group, halogenoalkyl groups and halogenoalkoxyl groups. The substituted thiocarbamoyl groups include, for example, methylthiocarbamoyl group, phenylthiocarbamoyl group and substituted phenylthiocarbamoyl groups, and the substituents thereof are particularly preferably halogens, alkoxyl groups, alkyl groups, hydroxyl group, halogenoalkyl groups and halogenoalkoxyl groups. The substituted amino groups in this specification indicate mono-substituted or di-substituted amino groups and the substituents thereof include lower alkyl groups, lower alkyl groups substituted with an aryl group, lower alkyl groups substituted with a heteroaryl group, lower alkanoyl groups, aroyl groups, lower halogenoalkanoyl groups, lower alkylsulfonyl groups, arylsulfonyl groups, heteroarylsulfonyl groups, halogenoalkylsulfonyl groups, lower alkyloxycarbonyl groups, aryl-substituted lower alkyloxycarbonyl groups, substituted or unsubstituted carbamoyl groups and substituted or unsubstituted thiocarbamoyl groups. The ammonium groups include such as trialkylammonium groups. <br><br> Because the phenylalanine derivatives of the general formula (1) of the present invention include asymmetric carbons, it can be considered that the phenylalanine derivatives of the general formula (1) of the present invention are optical isomers and the compound indicated in the present invention include the said optical isomers. However, L-form is preferable. <br><br> Regarding the compound in which a diastereomer exists, the diastereomer and the diastereomer mixture are included in the said phenylalanine derivatives. Because the phenylalanine derivatives of the <br><br> 17 <br><br> general formula (1) of the present invention include a movable hydrogen atom, it can be considered that the phenylalanine derivatives of the general formula (1) of the present invention include a variety of tautomeric forms and the compounds indicated in the present invention include the said tautomeric forms. Further, the carboxyl groups of the compound of the present invention may be subtituted with appropriate substituents which are converted into a carboxyl group in vivo. An example of such substituents is a lower alkoxycarbonyl group. <br><br> In the above-described general formula (1), <br><br> it is preferable that the groups indicated as A are both the general formulae (2) and (3), Arm in the general formulae (2) and (3) is preferably an aromatic ring and particularly a benzene ring and substituted benzene ring are preferable. R1 in the general formula (2) is preferably a hydrogen atom, a lower alkyl group and substituted lower alkyl group. Substituents thereof are preferably a phenyl group, cyano group and carboxyl group. It is preferable that R2 to R4 of the general formulae (2) and (3) are a hydrogen atom, a halogen, a hydroxyl group, a lower alkyl group, a lower alkoxy group, a halogen lower alkyl group, a substituted or unsubstituted amino group and an ammonium group. <br><br> The group represented by B is preferably a hydroxyl group. A lower alkoxy group is also preferable. <br><br> The group represented by C is preferably a lower alkyl group or a hydrogen atom and the hydrogen atom is more preferable. <br><br> As the groups represented by D, the cycloalkyl groups which may contain a hetero atom(s) in the ring thereof, aryl groups and heteroaryl groups are preferable. The cycloalkyl groups which may contain a hetero <br><br> 18 <br><br> atom(s) in the ring thereof, aryl groups and heteroaryl groups are either unsubstituted or substituted, and the substituents are those described above with reference to Rl, R2, R3, R4, R5, R6 and R7. Among these, the groups represented by D are particularly preferably substituted or unsubstituted cyclohexyl group or phenyl group. The substituents thereof are preferably 1 to 3 of, more preferably, 1 or 2 of lower alkyl groups or lower alkoxyl groups or halogen atoms. <br><br> The group represented by J and J' is preferably a hydrogen atom. <br><br> The group represented by T is preferably C(=0). <br><br> It is preferred that U, V and X are C(=0) and C(=S), and C(=0) is particularly preferred. W is preferably C(-R7) and -R7 is preferably a lower alkyl group, a lower alkoxyl group and a lower alkylthio group. <br><br> In the general formula (1) of the present invention, it is preferable that A represents one of the groups indicated as the general formula (2) or (3) and Rl, R2, R3, R4, R5, R6 and R7 may be the same or different from one another, and each represents the groups shown below: <br><br> a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a substituted lower alkyl group, a lower alkenyl group, a substituted lower alkenyl group, a lower alkynyl group, a substituted lower alkynyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, an aryl group, a heteroaryl group, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with an aryl group(s), a lower alkyl group substituted with a heteroaryl group(s), a lower alkoxyl group, a lower alkylthio group, a lower alkoxyl group and lower alkylthio group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) <br><br> 19 <br><br> in the ring thereof, a lower alkoxyl group and lower alkylthio group substituted with an aryl group(s), a lower alkoxyl group and lower alkylthio group substituted with a heteroaryl group(s), a cycloalkyloxy group which may contain a hetero atom(s) in the ring thereof, an aryloxy group, a heteroaryloxy group, a lower hydroxyalkyl group, a lower hydroxy alkenyl group, a lower hydroxyalkoxyl group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a lower halogenoalkenyl group, nitro group, cyano group, a substituted or unsubstituted amino group, carboxyl group, a lower alkyloxycarbonyl group, a substituted or unsubstituted carbamoyl group, a lower alkanoyl group, an aroyl group, a lower alkylsulfonyl group or a substituted or unsubstituted sulfamoyl group, R5 and R6 may be bonded together to form a ring which may contain one or two oxygen, nitrogen or sulfur atoms. <br><br> It is preferable that, in the general formula (1) of the present invention, B represents a hydroxyl group or a lower alkoxyl group, C represents a hydrogen atom or a lower alkyl group, <br><br> J and J' represent a hydrogen group, and in the general formulae (2) and (3), V and X represent any of group of C=(0), S(=0)2 or C(-R5)(-R6), <br><br> U represents any of group of C=(0), S(=0)2, C(-R5)(-R6), C(=C(R5)(R6)), C(=S), S(=0), P(=0)(-0H) or P(-H)&lt;=0). <br><br> Further, it is preferable that, in the general formula (1), B represents a hydroxyl group or a lower alkoxyl group, <br><br> C represents a hydrogen atom or a lower alkyl group, <br><br> J and J' represent a hydrogen group, and <br><br> 20 <br><br> in the general formulae (2) and (3), Arm represents a benzene ring or an aromatic ring containing 1, 2, 3 or 4 hetero atoms selected from the group consisting of oxygen, sulfur and nitrogen atoms. <br><br> Further, it is preferable that, in the general formula (1), B 5 represents a hydroxyl group or a lower alkoxyl group, <br><br> C represents a hydrogen atom or a lower alkyl group, <br><br> J and J' represent a hydrogen group, and in the general formulae (2) and (3), Arm represents a benzene ring or an aromatic ring containing 1, 2, 3 or 4 hetero atoms selected from the group 10 consisting of oxygen, sulfur and nitrogen atoms, <br><br> V and X represent any of group of C=(0), S(=0)2or C(-R5)(-R6), U represents any of group of C=(0), S(=0)2, C(-R5)(-R6), C(=C(R5)(R6)), C(=S), S(=0), P(=0)(-0H) and P(-H)(=0). <br><br> It is also preferred that, in the general formula (1), C represents a 15 hydrogen atom and T represents C(=0). <br><br> It is still preferred that, in the general formula (1), A represents the following formula (3-3): <br><br> R2 R3 <br><br> RKu&gt;s&gt;-R4 <br><br> (3-3) <br><br> wherein Arm, U and Rl to R4 are the same as those described <br><br> 20 above. <br><br> In the general formula (3-3), Arm is preferably an aromatic ring, <br><br> 21 <br><br> and particularly preferably a benzene ring or substituted benzene ring. Rl in the general formula (3-3) is preferably a hydrogen atom, lower alkyl group or a lower alkyl group substituted with phenyl group, cyano group or carboxyl group. Rl to R4 in the general formula (3-3) are preferably a hydrogen atom, halogen atom, hydroxyl group, lower alkyl group, lower alkoxyl group, cyano group, nitro group, an unsubstituted amino group or amino group substituted with a lower alkyl group(s). <br><br> In the general formula (1), A preferably represents the following formulae (3-4) or (3-5): <br><br> wherein Arm and Rl to R4 are the same as those described above, and the composite line of solid line and dotted line in the formula (3-5) represents a single bond or a double bond. <br><br> In the general formula (1), D preferably represents the following formulae (4-1), (4-2), (4-3) or (4-4): <br><br> (3-4) <br><br> (3-5) <br><br> 22 <br><br> R13 <br><br> &lt;=&lt; <br><br> R9 N-&lt; <br><br> R8 <br><br> (4-1) (4-2) (4-3) (4-4) <br><br> wherein R13 represents a halogen atom or methyl group, R8 represents a halogen atom, methyl group, trifluoromethyl group, methoxy group or a hydrogen atom, R9 represents a hydrogen atom, halogen atom, hydroxyl 5 group, lower alkyl group, cycloalkyl group which may contain a hetero atom(s) in the ring thereof, lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogenoalkoxyl group, lower halogenoalkylthio group, nitro group, 10 cyano group, amino group, amino group substituted with a lower alkyl group(s), trialkylammonium group, methanesulfonyl amino group and tetrazolyl group. <br><br> In the above formulae, the formula (4-1) is preferable. Particularly, it is preferable that in the formula (4-1), R13 and R8 15 represent a chlorine atom, and R9 represents a hydrogen atom, halogen atom, hydroxyl group, lower alkyl group, cycloalkyl group which may contain a hetero atom(s) in the ring thereof, lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogeno alkoxyl group, lower halogenoalkylthio group, nitro group, cyano group, amino group, 20 amino group substituted with a lower alkyl group(s) or trialkylammonium group. <br><br> 23 <br><br> It is also preferable that in the general formula (1), A represents the formula (3-4), Arm is a benzene ring, pyridine ring, pyrazole ring or cyclohexane ring, Rl is a lower alkyl group, R2, R3 and R4 may be the same or different from one another and each represent a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group, a lower alkylthio group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a nitro group, a cyano group, an amino group, an amino group substituted with a lower alkyl group (s) or a trialkylammonium group. <br><br> Further, it is preferred that in the general formula (1), A represents the formula (3-4) or (3-5), D represents (4-1), (4-2), (4-3) or (4-4), B is a hydroxyl group or a lower alkoxyl group, C is a hydrogen atom, each of J and J' is a hydrogen atom and T is C(=0). <br><br> In the present invention, it is preferable that in the general formula (1), A represents the formula (3-4) wherein Arm is a benzene ring, pyridine ring, pyrazole ring or cyclohexane ring, Rl is a lower alkyl group, R2, R3 and R4 may be the same or different from one another and each represent a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group, a lower alkylthio group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a nitro group, a <br><br> 24 <br><br> € "V <br><br> cyano group, an amino group, an amino group substituted with a lower alkyl group(s) or a trialkylammonium group, D represents the formula (4-1) wherein R13 and R8 represent a chlorine atom, and R9 represents a hydrogen atom, halogen atom, hydroxyl group, lower alkyl group, 5 cycloalkyl group which may contain a hetero atom(s) in the ring thereof, lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogeno alkoxyl group, lower halogenoalkylthio group, nitro group, cyano group, amino group, amino group substituted with a lower alkyl group(s) or trialkylammonium group, B is a hydroxyl group or a lower 10 alkoxyl group, C is a hydrogen atom, each of J and J' is a hydrogen atom and T is C(=0). <br><br> In the present invention, it is also preferred that in the general formula (1), A represents the formula (3-3), and in the formula (3-3), U represents C(=0) or C(=S), Rl represents a lower alkyl group, R2, R3 and 15 R4 may be the same or different from one another and each represent a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group, a 20 lower alkylthio group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a nitro group, a cyano group, an amino group, an amino group substituted with a lower alkyl group(s) or a trialkylammonium group, C represents a hydrogen atom, D represents the formula (4-1), (4-2), (4-3) or (4-4), T represents 25 C(=0). <br><br> Further, in the present invention, it is preferred that A represents <br><br> 25 <br><br> the formula (3-3), and in the formula (3-3), U represents C(=0) or C(=S), Rl represents a methyl group or ethyl group, R2, R3 and R4 may be the same or different from one another and each represent a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group, a lower alkylthio group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a nitro group, a cyano group, an amino group, an amino group substituted with a lower alkyl group(s) or a trialkylammonium group, B represents a hydroxyl group or lower alkyl group, C represents a hydrogen atom, D represents the formula (4-1), wherein R13 and R8 represent a chlorine atom, and R9 represents a hydrogen atom, halogen atom, hydroxyl group, lower alkyl group, cycloalkyl group which may contain a hetero atom(s) in the ring thereof, lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogenoalkoxyl group, lower halogenoalkylthio group, nitro group, cyano group, amino group, amino group substituted with a lower alkyl group(s) or trialkylammonium group, T is C(=0) and each of J and J' is a hydrogen atom. <br><br> In the present invention, phenylalanine derivatives of the following general formula and pharmaceutically acceptable salts thereof is preferable: <br><br> Rl <br><br> 26 <br><br> wherein Rl represents a methyl group or ethyl group, R8 represents a halogen atom or methyl group, RIO represents a hydrogen atom or a lower alkyl group, Rll and R12 may be the same or different from each other and each represents a hydrogen atom, methyl group, ethyl group or propyl group, Rll and R12 may be bonded together to form a ring, and in that case, R11-R12 represent trimethylene, tetramethylene or pentamethylene. It is particularly preferable that RIO represents a lower alkyl group. <br><br> More concretely, the compounds described in Examples are preferable though they are not particularly limited. <br><br> Especially, the compounds of the following formulae and pharmaceutically acceptable salts thereof are preferred: <br><br> 27 <br><br> 28 <br><br> 29 <br><br> The phenylalanine derivatives (1) of the present invention can synthesized, for example, by methods described below when B is hydroxyl group. <br><br> 30 <br><br> 5 <br><br> # 10 <br><br> A suitably protected carboxylic acid (4) is loaded into a resin by a usual method. The substituent P of the carboxylic acid (4) has a structure of C as described above with reference to the general formula (1), it is a substituent which can be converted into C in any stage of the synthesis or it is suitably protected form of these substituents. The substituent Q of the carboxylic acid (4) has a structure of D-T as described above with reference to the general formula (1), it is a substituent which can be converted into D-T in any stage of the synthesis or it is suitably protected form of these substituents. Further, the substituent R of the carboxylic acid (4) has a structure of a substituent which can be converted into NH2 or suitably protected form of group of NH2. <br><br> As for the loading reaction conditions, the reaction can be conducted by using, if necessary, a suitable additive such as HOAt (1-hydroxy-7-azabenzotriazole), HOBt (1-hydroxybenzotriazole) or DMAP (dimethylaminopyridine) and a condensing agent such as DIC (diisopropylcarbodiimide), DCC (dicyclohexylcarbodiimide) or EDC (1-ethyl-3-(3-dimethylaminopropyl)carbodiimide) in an organic solvent such as dichloromethane, DMF (N,N-dimethylformamide) or NMP (N-methyl- <br><br> 31 <br><br> 2-pyrrolidone). For example, when Wang resin is used, the reaction is carried out in the presence of pyridine and 2,6-dichlorobenzoyl chloride in DMF to obtain an ester (5). The ester (5) can be changed to an amine (6) under suitable conditions depending on the substituent R. For example, when a nitro group is used as R, the ester (5) can be changed to the amine (6) in the presence of a reducing agent such as SnCl2 or hydrates thereof in a solvent such as NMP, DMF or ethanol. In the case of an amine protected with Fmoc group (9-fluorenylmethoxycarbonyl group) (FmocNH), the protective group can be removed with a base such as piperidine in a solvent such as DMF to obtain the amine (6). <br><br> A quinazolinedione (9) wherein A represents the general formula (2) and U and V are both C(=0) in the general formula (1) can be obtained by the following method. First, an urea (7) is obtained by reacting the amine (6) with an isocyanate having a carboxylate ester group in the ortho position. Then, a quinazolinedione (8) can be obtained by a ring closure reaction with a base such as a piperidine in a solvent such as DMF or TMG (tetramethylguanidine). Further, reagents such as alkyl halide and aryl halide are reacted thereto to obtain the quinazolinedione (9), or the said compound can also be obtained by Mitsunobu reaction using alcohol. <br><br> 32 <br><br> &lt;7&gt; (8) <br><br> (9) <br><br> A quinazolinedione (9) wherein A represents the general formula (2) and U and V are both C(=0) in the general formula (1) can also be synthesized by the following method. First, an amide (10) can be obtained by reacting the amine (6) with an acylchloride having a nitro group in the ortho position under the existence of 2,6-lutidine base in a solvent such as NMP, or by reacting it with a carboxylic acid having a nitro group in the ortho position activated by using a condensing agent such as DIC and, if necessary, a suitable additive such as HOAt or HOBt in an organic solvent such as DMF, NMP or dichloromethane. Then, an amine (11) is obtained by reducing the nitro group with SnCl2 or hydrates thereof and cyclized by reagents such as CDI (carbonyldiimidazole), <br><br> 33 <br><br> triphosgene or p-nitrophenylchloroformate to obtain the quinazolinedione <br><br> (8). <br><br> As the other synthesizing methods, the quinazolinedione (8) can also be obtained by the following method. First, an amide (11) can be obtained by reacting the amine (6) with a carboxylic acid having a amino group in the ortho position activated by using a condensing agent such as DIC and, if necessary, a suitable additive such as HOAt or HOBt in an organic solvent such as DMF, NMP or dichloromethane. Then, an amide (11) is cyclized by reagents such as CDI, triphosgene or p-nitrophenylchloroformate to obtain the quinazolinedione (8). This method applies to one of the synthesizing methods in case that A represents the general formula (3-1) and U and V are both C(=0) in the general formula (1), when a variety of salicylic acids is used instead of the above carboxylic acid and the resulting amide (11) is cyclized by reagents such as CDI, triphosgene or p-nitrophenylchloroformate after adding a base such as ethanolamine. <br><br> &lt;1°&gt; (id <br><br> 34 <br><br> A quinazolinedione (9) wherein A represents the general formula (2), U and V are both C(=0) and R2, R3 or R4 is an electron withdrawing substituent such as a nitro group in the general formula (1) can also be synthesized by the following method. First, an amide (42) can be obtained by reacting the amine (6) with a carboxylic acid having a fluoro group in the ortho position activated by using a condensing agent such as DIC and, if necessary, a suitable additive such as HOAt or HOBt in an organic solvent such as DMF, NMP or dichloromethane. Then, after an amine (43) is obtained by substituting a fluoro group with an amine, the amine (43) is cyclized by reagents such as CDI, triphosgene or p-nitrophenylchloroformate to obtain the quinazolinedione (9). <br><br> (42) (43) <br><br> (9) <br><br> As the example of the methods for synthesizing an ester (12) wherein A represents the general formula (2), U is C(=S) and V is C(=0) in the general formula (1), the said ester can be obtained by reacting the amine (6) with an isothiocyanate having a carboxylate group in the ortho position. <br><br> 35 <br><br> "rV# <br><br> As the example of the methods for synthesizing an ester (44) wherein A represents the general formula (2), U is C(=S) and V is C(=0) in the general formula (1), the said ester can be obtained by reacting the amine (43) with a thiocarbonyldiimidazole in a solvent such as decahydro-naphthalene and toluene. <br><br> Among ester (13) wherein A represents the general formula (3) and W is C(-R7) in the general formula (1), particularly those that R7 is a lower alkylthio group, a lower alkylthio group substituted with a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, a lower alkylthio group substituted with an aryl group or a lower alkylthio group substituted with a heteroaryl group can be obtained by reacting the ester (12) with reagents such as alkyl halide and aryl halide. <br><br> R1 <br><br> 82 <br><br> (43) <br><br> (44) <br><br> 36 <br><br> R2 <br><br> (12) <br><br> Q <br><br> P <br><br> -V* <br><br> o <br><br> (13) <br><br> Further, among ester (14) wherein A represents the general formula (3) and W is C(-R7) in the general formula (1), particularly those that R7 is a hydrogen atom, a lower alkyl group, a lower alkenyl group, a lower alkynyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, an aryl group, a heteroaryl group, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with an aryl group(s), a lower alkyl group substituted with a heteroaryl group(s), a lower alkoxyl group, a lower alkoxyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group substituted with an aryl group(s), a lower alkoxyl group substituted with a heteroaryl group(s), a cycloalkyloxy group which may contain a hetero atom(s) in the ring thereof, an aryloxy group, a heteroaryloxy group, a lower hydroxyalkyl group, a lower hydroxyalkenyl group, a lower hydroxyalkoxyl group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkenyl group, nitro group, cyano group, a substituted or unsubstituted amino group, carboxyl group, <br><br> 37 <br><br> a lower alkyloxycarbonyl group, a substituted or unsubstituted carbamoyl group, a lower alkanoyl group, an aroyl group, a lower alkylthio group, a lower alkylsulfonyl group or a substituted or unsubstituted sulfamoyl group can be obtained by reacting the amine (11) with various orthoformates or equivalents thereof. The said ester can also be obtained by oxidation after reacting with aldehyde or acetal. <br><br> Among ester (14) wherein A represents the general formula (3) and W is C(-R7) in the general formula (1), particularly those that R7 is a substituted amino group can be synthesized as follows. First, Y in an ester (15) is a group such as an azide group and amino group and each can be changed to an iminophosphine (16) by reacting with triphenylphosphine or triphenylphosphine under the existence of diisopropylazodicarboxylic acid respectively. Then, carbodiimide (17) (n is 0 to 4.) is obtained by Aza-Wittig reaction of the iminophosphine (16) with an isocyanate having a carboxylate group in the ortho position. After the nucleophilic attack to the carbodiimide of the amine and the ring closure thereafter, the ester (18) can be synthesized. <br><br> (11) <br><br> P O <br><br> Q. <br><br> (14) <br><br> 38 <br><br> &lt;V^ ,0 P 0 <br><br> (15) <br><br> (16) <br><br> (17) (18) <br><br> As the example of the methods for synthesizing an ester (45) wherein A represents the general formula (3), W is N and X is C(=0) in the general formula (1), the said ester can be obtained by reacting the amine (11) with a sodium nitrite in a solvent such as acetic acid. <br><br> (11) <br><br> Ox <br><br> 0 <br><br> (45) <br><br> 39 <br><br> As the example of the methods for synthesizing an ester (46) wherein A represents the general formula (2), U is S(=0) and V is C(=0) in the general formula (1), the said ester can be obtained by reacting the amine (43) with, for example, a thionyl chloride in a solvent such as dichloromethane. <br><br> As the example of the methods for synthesizing an ester (50) wherein A represents the general formula (2), U is C(=0) and V is S(=0)2 in the general formula (1), the said ester can be obtained by the following method. First, a sulfonamide (47) can be obtained by reacting the amine (6) with a sulfonyl chloride having a nitro group in the ortho position under the existence of a base such as 2,6-lutidine in a solvent such as NMP and dichloromethane. Then, an amine (48) is obtained by reducing a nitro group with SnCl2 or hydrates thereof and cyclized by reagents such as CDI, triphosgene or p-nitrophenylchloroformate to obtain (49). Further, the alkyl halide is reacted thereto to obtain the said ester. <br><br> R1 <br><br> R2 <br><br> (43) <br><br> (46) <br><br> 40 <br><br> (6) <br><br> P <br><br> Vy°* <br><br> P 0 <br><br> (49) <br><br> (50) <br><br> As the example of the methods for synthesizing an ester (54) wherein A represents the general formula (2), U and V are both C(=0) and R2, R3 or R4 is an amino group in the general formula (1), the said ester can be obtained by the following method. First, an amide (51) can be obtained by reacting the amine (6) with a carboxylic acid having a nitro group as a substituent(s) and an amino group in the ortho position, activated by using a condensing agent such as DIC and, if necessary, a suitable additive such as HOAt or HOBt in an organic solvent such as DMF, NMP or dichloromethane. Then, (52) is obtained by being cyclized by reagents such as CDI, triphosgene or p-nitrophenylchloroformate. After the reaction with alkyl halide, the amine (54) can be obtained by reducing a nitro group with SnCl2, hydrates thereof or the like. <br><br> 41 <br><br> nitro group nitro group <br><br> P 0 ^ <br><br> (53) (54) <br><br> As the example of the methods for synthesizing an ester (54) wherein A represents the general formula (2), U and V are both C(=0) and R2, R3 or R4 is an acylamino group in the general formula (1), the said ester can be obtained by reacting (54) with acyl halide under the existence of a base such as pyridine in an organic solvent such as DMF, NMP and dichloromethane. <br><br> 42 <br><br> As the example of the methods for synthesizing an ester (60) wherein A represents the general formula (2), U and V are both C(=0) and R2, R3 or R4 is a substituted amino group in the general formula (1), the said ester can be obtained by the following method. First, an amide (56) can be obtained by reacting the amine (6) with a carboxylic acid having a fluoro group as a substituent(s) and a nitro group in the ortho position, activated by using a condensing agent such as DIC and, if necessary, a suitable additive such as HOAt or HOBt in an organic solvent such as DMF, NMP or dichloromethane. Then, an amine (57) can be obtained by reacting amide (56) with a substituted amine in a solvent such as NMP and DMSO, and (58) is obtained by reducing the nitro group with SnCl2, hydrates thereof or the like. After obtaining (60) by cyclizing (58) by reagents such as CDI, triphosgene and p-nitrophenylchloroformate, (61) can be obtained by Mitsunobu reaction using an alcohol, diisopropylazodicarboxylic acid and the like. <br><br> (6) <br><br> N <br><br> P 0 <br><br> (56) <br><br> P 0 <br><br> substituted amino group substituted <br><br> (58) <br><br> substituted (60) H1 amino group <br><br> .1 8, <br><br> R3 <br><br> (61) <br><br> As the example of the methods for synthesizing an ester (62) wherein A represents the general formula (2), U and V are both C(=0) and R2, R3 or R4 is an ammonium group in the general formula (1), the said ester can be obtained by reacting (61) with alkyl halide under the existence of a base such as diisopropylethylamine in an organic solvent such as DMF and NMP. <br><br> 44 <br><br> ammonium group <br><br> (61) <br><br> &lt;k <br><br> P 0 <br><br> R3 <br><br> (62) <br><br> As the example of the methods for synthesizing an ester (68) wherein A represents the general formula (3-2) in the general formula (1), the said ester can be obtained by the following method. First, an amide (63) can be obtained by reacting the amine (6) with a carboxylic acid having an amino group protected with Fmoc in /3 -position activated by using a condensing agent such as DIC and, if necessary, a suitable additive such as HOAt or HOBt in an organic solvent such as DMF, NMP or dichloromethane. Then, an amine (64) can be obtained by removing Fmoc and then a sulfonamide (65) can be obtained by reacting (64) with a sulfonyl chloride having a nitro group as a substituent(s) under the existence of a base such as 2,6-lutidine in a solvent such as NMP and dichloromethane. Further, (66) can be obtained by reacting (65) with alkyl halide under the existence of a base such as diisopropylethylamine, and then an amine (67) can be obtained by reacting (66) with mercaptoethanol, diazabicycloundecene and so on. The compound is cyclized by reagents such as CDI, triphosgene and p-nitrophenylchloroformate to obtain the ester (68). <br><br> 45 <br><br> (6) <br><br> Ck, <br><br> Fmoc HNWR2 <br><br> nnss^i\£ <br><br> ws*» <br><br> Jtv jt" J n <br><br> J©? <br><br> '-V# <br><br> (63) <br><br> 0^ <br><br> DO <br><br> Hfk^R2 <br><br> ni'Sy11 <br><br> jb^r <br><br> -V°# <br><br> n <br><br> (65) <br><br> *1 <br><br> HN^R2 <br><br> -V# <br><br> n nnN^rw: <br><br> h*. <br><br> (67) <br><br> J&amp;l <br><br> V# <br><br> Ck, <br><br> po <br><br> Rl— N^R2 <br><br> a„ <br><br> p o <br><br> (66) <br><br> R1 <br><br> 0^N^R2 <br><br> J&amp; <br><br> -x^ <br><br> J n <br><br> (68) <br><br> When A in the phenylalanine derivative (1) of the present invention represents the general formula (3-3) and Arm is a benzene ring, the ester can be synthesized in accordance with the following method. The same method can be applied even when Arm is other than a benzene ring. <br><br> 46 <br><br> p u an (72) <br><br> First, the amine (6) is reacted with a halogenated methylbenzene having a nitro group in the ortho position to obtain a benzylamine (69). After the said benzylamine is reduced by tin chloride and the like to obtain an amine (70), an amine (71) can be obtained by converting the 5 amine on the benzene ring of the introduced benzyl part into mono Rl substituted group by various methods. An ester (72) can be obtained by being finally cyclized by reagents such as CDI, triphosgene and p-nitrophenylchloroformate. <br><br> D-T part in the general formula (1) can be constructed as follows. <br><br> 10 For example, when T is C(=0) and B is a hydroxyl group in the formula (1), if, in the ester (19), the substituent G has C structure, the substituent(s) which can be converted into C in a certain point of the synthesizing process or the substituent(s) which have suitably protected structure, <br><br> 47 <br><br> then the substituent Z has the structure of (2), (3), (3-1), (3-2) or the substituent(s) which can be converted into A in a certain point of the synthesizing process or the substituent(s) has suitably protected structure, the ester (19) can be converted in the amine (20) by removing a protective group(s) under suitable conditions depending on the protective group E. For instance, when Fmoc group (9-fluorenylmethoxycarbonyl group) is used as E, the protective groups can be removed with a base such as piperidine in a solvent such as DMF. The amine (20) can be converted into the amide (21) by condensing carboxylic acid by using a condensing agent such as DIC and, if necessary, a suitable additive such as HOAt or HOBt in an organic solvent such as DMF, NMP and dichloromethane. <br><br> Further, the amine (20) is reacted with acyl halide, carboxylic anhydride, sulfonyl halide and sulfonyl anhydride under the existence of an organic base such as triethylamine, diisopropylethylamine, pyridine and N,N-dimethylaminopyridine or an inorganic base such as potassium carbonate and sodium carbonate in an organic solvent such as DMF, NMP and dichloromethane and then can form the corresponding amide structure and sulfonamide acid structure. <br><br> Further, the amine (20) is reacted with various isocyanate and j <br><br> j <br><br> (i») <br><br> 48 <br><br> isothiocyanate under the existence of an organic base, if necessary, such as triethylamine, diisopropylethylamine, pyridine and N.N-dimethylaminopyridine in an organic solvent such as DMF, toluene and dichloromethane and then can form the corresponding urea structure and thiourea structure. <br><br> The esters synthesized by the above-described methods such as (9), (12), (13), (14), (18), (21), (44), (45), (46), (50), (54), (55), (61), (62), (68) and (72) are cleaved from a resin under suitable conditions to obtain a carboxylic acid (87). For example, when Wang resin is used, if, in the ester (22), each of Al, Cl and Dl is A, C, and D respectively or a group which is converted in A, C, and D respectively under the cleavage condition, the ester (22) is treated with an acidic solution including such as TFA (trifluoroacetic acid) thereto to obtain a solution of the carboxylic acid (87). Further, the pure carboxylic acid (87) can be obtained by applying well-known isolating and purification methods such as concentration, extraction, crystallization, column chromatography, HPLC and recrystallization to the thus-obtained carboxylic acid (87). <br><br> The compound wherein B represents a lower alkoxyl group in the general formula (1) can be obtained by condensing the carboxylic acid (87) with a suitable lower alcohol under the existence of a suitable condensing agent or acid catalyst. <br><br> The compound wherein B represents a hydroxylamino group in the general formula (1) can be obtained by condensing the carboxylic acid (87) with a hydroxylamine under the existence of a suitable condensing agent. <br><br> The phenylalanine derivative (1) can be synthesized by applying solid phase methods shown above to solution phase methods, by selecting <br><br> 49 <br><br> a suitable protective group and using well-known isolating and purification methods. <br><br> (22) <br><br> (87) <br><br> 5 When the compounds of general formula (1) can form salts thereof, <br><br> it is sufficient for the salts to be pharmaceutically acceptable ones. When the compound has an acidic group such as carboxyl group, the salts can be ammonium salts, or salts thereof with alkali metals, e. g. sodium and potassium, salts thereof with alkaline earth metals, e. g. calcium and 10 magnesium, salts thereof with aluminum and zinc, salts thereof with organic amines, e. g. triethylamine, ethanolamine, morpholine, piperidine and dicyclohexylamine, and salts thereof with basic amino acids, e. g. arginine and lysine. When the compound has a basic group, the salts can be those with inorganic acids, e. g. hydrochloric acid, sulfuric acid and 15 phosphoric acid; those with organic acids, e. g. acetic acid, citric acid, benzoic acid, maleic acid, fumaric acid, tartaric acid and succinic acid; and those with organosulfonic acids, e. g. methanesulfonic acid and p-toluenesulfonic acid. The salts can be formed by mixing a compound of <br><br> 50 <br><br> the general formula (1) with a necessitated acid or base in a proper ratio in a solvent or dispersant or by the cation exchange or anion exchange reaction with another salt. <br><br> The compounds of the general formula (1) of the present invention include also solvates thereof such as hydrates and alcohol adducts thereof. <br><br> The compounds of general formula (1) and salts thereof are administered as they are or in the form of various pharmaceutical compositions to patients. The dosage forms of the pharmaceutical compositions are, for example, tablets, powders, pills, granules, capsules, suppositories, solutions, sugar-coated tablets, depots and syrups. They can be prepared with ordinary preparation assistants by an ordinary method. <br><br> For example, the tablets are prepared by mixing the phenylalanine derivative, the active ingredient of the present invention, with any of known adjuncts such as inert diluents, e. g. lactose, calcium carbonate and calcium phosphate; binders, e. g. acacia, corn starch and gelatin; extending agents, e. g. alginic acid, corn starch and pre-gelatinized starch; sweetening agents, e. g. sucrose, lactose and saccharin; flavour, e. g. peppermint, Akamono (Gaultheria aderothrix) Oil and cherry; lubricants, e. g. magnesium stearate, talc and carboxymethyl cellulose; excipients for soft gelatin capsules and suppositories, e. g. fats, waxes, semi-solid or liquid polyols, natural oils and hardened oils; and excipients for solutions, e. g. water, alcohols, glycerols, polyols, sucrose, invert sugars, glucose and vegetable oils. <br><br> The antagonist containing a compound(s) of above general formula <br><br> 51 <br><br> (1) or a salt(s) thereof as active ingredient is usable as a therapeutic agent or preventing agent for diseases in which a 4 integrin-depending adhesion process participates in the pathology, such as inflammatory diseases, rheumatoid arthritis, inflammatory bowel diseases, systemic lupus erythematosus, multiple sclerosis, Sjogren's syndrome, asthma, psoriasis, allergy, diabetes, cardiovascular diseases, arterial sclerosis, restenosis, tumor proliferation, tumor metastasis, transplantation rejection, etc. <br><br> The dose of the compound of general formula (1) or salt thereof used for the above-described purpose varies depending on the intended therapeutic effect, administration method, period of the treatment, and age and body weight of the patient. The dose is usually 1 n g to 5 g a day for adults in the oral administration, and 0.01 tig to 1 g a day for adults in the parenteral administration. <br><br> (Examples) <br><br> The following Examples will further illustrate the present invention, which are only preferred embodiments of the invention and which by no means limit the invention. <br><br> Example 1 Synthesis of the compound of the following general formula (23) which has a substituent(s) of Example 1 of Table 1 Process 1 Preparation of resin <br><br> Fmoc-Phe(4-nitro)-OH (2.5g), 2,6-dichlorobenzoyl chloride (0.745mL) and pyridine (1.5mL) in a solution of NMP (25mL) were added to Wang resin (0.76mmol/g, 2.3g) and stirred at room temperature for 16 <br><br> 52 <br><br> hours. After removing the excess solvent, the resin was washed with DMF three times, dichloromethane three times and NMP twice. In order to conduct capping of an unreacted hydroxyl group on the resin, the resin was treated with acetic anhydride (20mL), pyridine (20mL) and NMP (20mL) for 2 hours. After removing the excess solvent, the resin was washed with DMF three times and dichloromethane three times, and dried under reduced pressure. <br><br> Process 2 Removal of Fmoc group <br><br> A DMF solution of 20% piperidine (25mL) was added to the resin obtained in Process 1 and reacted for 15 minutes. After removing the solvent, the resin was washed with DMF and dichloromethane three times each, and dried under reduced pressure. <br><br> Process 3 Acylation reaction <br><br> 2,6-dichlorobenzoyl chloride (l.lmL), 2,6-lutidine (1.6mL) and NMP (26mL) were added to 2.0g of the resin obtained in Process 2 and reacted for 6 hours. After removing the excess solvent, the resin was washed with DMF and dichloromethane three times each, and dried under reduced pressure. <br><br> Process 4 Reduction of nitro group <br><br> NMP (30mL) • EtOH (1.5mL) solution of SnCl2 • 2H20 (15.Og) was added to 1.5g of the resin obtained in Process 3 and reacted for 16 hours. After removing the reaction solvent, the resin was washed with DMF and dichloromethane three times each. <br><br> Process 5 Construction of quinazoline-2,4-dione ring <br><br> 2g of the resin obtained in Process 4 was reacted in NMP solution <br><br> 53 <br><br> (32mL) of methyl 2-isocyanatebenzoate (1.92g) for 16 hours. After removing the reaction solvent, the resin was washed with DMF and dichloromethane three times each. DMF solution of 20% piperidine was added to the resin for 1 hour. After removing the reaction solvent, the 5 resin was washed with DMF and dichloromethane three times each and dried under reduced pressure. <br><br> Process 6 Alkylation <br><br> Methyl iodide (0.75mmol), 18-crown-6 (30mg), NMP (lmL) and K2C03 (35mg) were added to 20mg of the resin obtained in Process 5 and 10 reacted for 3 days. After removing the reaction solvent, the resin was washed with DMF, water, DMF and dichloromethane three times each and dried under reduced pressure. <br><br> Process 7 Cleavage from resin 15 The resin obtained in Process 6 was treated with trifluoroacetic acid containing 5% of water for 1 hour. After filtration, the filtrate was concentrated under reduced pressure. The residue was purified with high-pressure liquid chromatography (water/acetonitrile) to obtain 8mg of the intended compound. <br><br> 20 MS(ESI MH+) : 512 <br><br> CHNO : C25H19C12N305 <br><br> Examples 2 to 7 <br><br> The compounds described below were synthesized by the same 25 procedure as that of Example 1 except that corresponding alkylation reagents were used in Process 6 of Example 1. Meanwhile, R in Table 1 <br><br> 54 <br><br> is a substituent(s) in the following general formula (23) and the same procedure as that of Example 1 was repeated in Example 2 except that Process 6 of Example 1 was not carried out. <br><br> Table 1 <br><br> Example R- MS Found (MH+) <br><br> 10 1 Me- 512 <br><br> 2 H- 498 <br><br> 3 Et- 526 <br><br> 4 2,6-difluorobenzyl 624 <br><br> 5 4-(l-pyrrolidino)benzenecarbonylmethyl 685 15 6 NCCH2- 537 <br><br> 7 H0C(=0)CH2- 556 <br><br> Example 8 Synthesis of the compound of the following general formula (24) which has a substituent(s) of Example 8 of Table 2 <br><br> 55 <br><br> Process 1 Construction of quinazoline-2,4-dione ring and Removal of Fmoc group A nitro group of the resin (lg) obtained in Process 1 of Example 1 was reduced in accordance with Process 4 of Example 1, and quinazoline-5 2,4-dione ring was constructed and Fmoc group was removed in accordance with Process 5 of Example 1. <br><br> Process 2 Acylation, Alkylation, and Cleavage from resin <br><br> Acylation was conducted by using the resin obtained in Process 1 of Example 8 (25mg), 2,6-dimethyl benzoic acid (0.4mmol), DIC (0.4mmol), 10 HOAt (0.4mmol) and NMP (2mL). Then, alkylation was conducted in accordance with Process 6 of Example 1 and cleavage from resin and purification was performed by the same process as Process 7 of Example 1 to obtain the intended compound (9mg). <br><br> MS (ESI MH+) : 472 15 CHNO : C27H25N305 <br><br> Examples 9 to 13 <br><br> The compounds described below were synthesized by the same procedure as that of Example 8 except that corresponding carboxylic acid 20 was used in Process 2 of Example 8. R in Table 2 is a substituent(s) in the following general formula (24). Further, twice as much as DIC and HOAt used in Process 2 of Example 8 were used in Example 13, to obtain the intended compound (7mg). <br><br> 56 <br><br> ^Co <br><br> V0H <br><br> H <br><br> ° (24) <br><br> Table 2 <br><br> Example <br><br> R- MS <br><br> Found (MH+) <br><br> 8 <br><br> 2,6-dimethylbenzoyl <br><br> 472 <br><br> 9 <br><br> 2,6-dimethoxybenzoyl <br><br> 504 <br><br> 10 <br><br> 2-ethoxybenzoyl <br><br> 488 <br><br> 11 <br><br> 3,4-dimethoxycinnamyl <br><br> 530 <br><br> 12 <br><br> cyclohexylcarbonyl <br><br> 450 <br><br> 13 <br><br> trans-4-carboxycyclohexanecarbonyl <br><br> 494 <br><br> Example 14 Synthesis of the compound of the following general formula (25) which has a substituent(s) of Example 14 of Table 3 Process 1 Construction of quinazoline-2-thioxo-4-one ring <br><br> The resin obtained in Process 4 of Example 1 (2.00g) was reacted in NMP solution (25mL) of methyl 2-isothiocyanatebenzoate (1.40g) for 16 hours. After removing the reaction solvent, the resin was washed with DMF and dichloromethane three times each and dried under reduced pressure. <br><br> Process 2 Cleavage from resin <br><br> 57 <br><br> % <br><br> The resin obtained in Process 1 (25mg) was treated in accordance with Process 7 of Example 1 to obtain the intended compound (lOmg). <br><br> MS (ESI MH+) : 513 CHNO : C24H17C12N304S <br><br> 5 <br><br> Example 15 Synthesis of the compound of the following general formula (25) which has a substituent(s) of Example 15 of Table 3 Process 1 Acylation <br><br> Acylation was conducted by using the resin obtained in Process 2 of 10 Example 1 (25mg), 2,6-dimethylbenzoic acid (0.4mmol), DIC (0.4mmol), HOAt (0.4mmol) and NMP (2mL). <br><br> Process 2 Construction of quinazoline-2-thioxo-4-one ring <br><br> The resin obtained in Process 1 (2.00g) was reacted in NMP solution (25mL) of methyl 2-isothiocyanatebenzoate (1.40g) for 16 hours. 15 After removing the reaction solvent, the resin was washed with DMF and dichloromethane three times each and dried under reduced pressure. <br><br> Process 3 Cleavage from resin <br><br> The resin obtained in Process 1 (25mg) was treated in accordance 20 with Process 7 of Example 1 to obtain the intended compound (8mg). <br><br> MS (ESI MH+) : 474 CHNO : C26H23N304S <br><br> 58 <br><br> H <br><br> H « (25) <br><br> Table 3 <br><br> Example R- <br><br> MS Found (MH+) <br><br> 14 <br><br> 2,6-dichlorobenzoyl <br><br> 513 <br><br> 15 <br><br> 2,6-dimethylbenzoyl <br><br> 474 <br><br> Example 16 Synthesis of the compound of the following general formula (26) which has a substituent(s) of Example 16 of Table 4 <br><br> Allylbromide (0.5mmol), diisopropylethylamine (l.Ommol) and NMP (2mL) were added to the resin obtained in Process 1 of Example 14 (25mg) and reacted for 16 hours. After removing the reaction solvent, the resin was washed with DMF and dichloromethane three times each and dried under reduced pressure. <br><br> Process 2 Cleavage from resin <br><br> The resin obtained in Process 1 was treated in accordance with Process 7 of Example 1 to obtain the intended compound (6mg). <br><br> MS (ESI MH+) : 554 CHNO : C27H21C12N304S <br><br> Process 1 Alkylation <br><br> 59 <br><br> Examples 17 to 30 <br><br> The compounds shown in Table 4 were synthesized by the same procedure as that of Example 16 except that the resin obtained in Process 1 of Example 14 or Process 2 of Example 15 was used and the corresponding halide was used in Process 1 of Example 16. Meanwhile, Rl and R2 in Table 4 are a substituent(s) in the following general formula (26). <br><br> Table 4 <br><br> Example <br><br> Rl- <br><br> R2- MS Found (MH+) <br><br> 16 <br><br> 2,6-dichlorobenzoyl allyl <br><br> 554 <br><br> 17 <br><br> 2,6-dichlorobenzoyl ethyl <br><br> 542 <br><br> 18 <br><br> 2,6-dichlorobenzoyl methyl <br><br> 528 <br><br> 19 <br><br> 2,6-dichlorobenzoyl isoamyl <br><br> 584 <br><br> 20 <br><br> 2,6-dichlorobenzoyl <br><br> 2,6-difluorobenzyl <br><br> 640 <br><br> 21 <br><br> 2,6-dichlorobenzoyl <br><br> 2 -methylbenzyl <br><br> 618 <br><br> 22 <br><br> 2,6-dichlorobenzoyl <br><br> 1-phenylethyl <br><br> 618 <br><br> 23 <br><br> 2,6-dichlorobenzoyl <br><br> 4-methoxyphenacyl <br><br> 662 <br><br> 60 <br><br> 24 <br><br> 2,6-dimethylbenzoyl methyl <br><br> 488 <br><br> 25 <br><br> 2,6-dimethylbenzoyl ethyl <br><br> 502 <br><br> 26 <br><br> 2,6-dimethylbenzoyl allyl <br><br> 514 <br><br> 27 <br><br> 2,6 -dimethylb enzoyl isoamyl <br><br> 544 <br><br> 28 <br><br> 2,6-dimethylbenzoyl <br><br> 2,6-difluorobenzyl <br><br> 600 <br><br> 29 <br><br> 2,6-dimethylbenzoyl <br><br> 2-methylbenzyl <br><br> 578 <br><br> 30 <br><br> 2,6-dimethylbenzoyl <br><br> 1-phenylethyl <br><br> 578 <br><br> NMR data of the compound of Example 18: ^-NMR (CDC13) 5 =2.53 10 (3H, s), 3.40 (2H, t, J=5.3 Hz), 5.20 (IH, t, J=5.3 Hz), 7.21-7.35 (6H, m), 7.41 (IH, t, J=7.5 Hz), 7.50 (2H, d, J=8.7 Hz), 7.65 (IH, d, J=8.4 Hz), 7.76 (IH, t, J=6.9 Hz), 8.19 (IH, d, J=7.5 Hz) <br><br> Example 31 Synthesis of the compound of the following general formula 15 (27) which has a substituent(s) of Example 31 of Table 5 Process 1 Acylation <br><br> 2-nitrobenzoylchloride (4mmol), 2,6-lutidine (8mmol) and NMP were added to the resin obtained in Process 4 of Example 1 (l.OOg) and stirred for 16 hours. After that, the resin was washed with DMF and 20 dichloromethane three times each and dried under reduced pressure. Process 2 Reduction of nitro group <br><br> The resin obtained in Process 1 (25mg) was treated in accordance with Process 4 of Example 1 to obtain the intended resin. <br><br> Process 3 Cyclization by ortho ester and Cleavage from resin 25 Trimethylorthoacetate (lmL), AcOH (50jiL) and NMP (lmL) were added to the resin obtained in Process 2 (25mg) and stirred at 50°C for 16 <br><br> 61 <br><br> hours. After washing it with DMF and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound (8mg). <br><br> MS(ESI MH+) : 496 CHNO : C25H19C12N30 <br><br> Examples 32 to 44 <br><br> The compounds shown in Table 5 were synthesized by the same procedure as that of Example 31 except that the resin obtained in Process 4 of Example 1 or Process 1 of Example 15 was used in Process 1 of Example 31 and the corresponding ortho ester was used in Process 3 of Example 31. Meanwhile, Rl and R2 in Table 5 are a substituent(s) in the following general formula (27). <br><br> Table 5 <br><br> Example Rl- <br><br> R2- <br><br> MS Found (MH+) <br><br> 31 <br><br> 2,6-dichlorobenzoyl methyl <br><br> 496 <br><br> 32 <br><br> 2,6-dichlorobenzoyl ethyl <br><br> 510 <br><br> 33 <br><br> 2,6-dichlorobenzoyl n-propyl <br><br> 524 <br><br> 34 <br><br> 2,6-dichlorobenzoyl n-butyl <br><br> 538 <br><br> 62 <br><br> 35 <br><br> 2,6-dichlorobenzoyl phenyl <br><br> 558 <br><br> 36 <br><br> 2,6-dichlorobenzoyl methoxy <br><br> 512 <br><br> 37 <br><br> 2,6-dichlorobenzoyl ethoxy <br><br> 526 <br><br> 38 <br><br> 2,6-dichlorobenzoyl chloromethyl <br><br> 530 <br><br> 39 <br><br> 2,6-dimethylbenzoyl methyl <br><br> 456 <br><br> 40 <br><br> 2,6-dimethylbenzoyl n-propyl <br><br> 484 <br><br> 41 <br><br> 2,6-dimethylbenzoyl n-butyl <br><br> 498 <br><br> 42 <br><br> 2,6-dimethylbenzoyl phenyl <br><br> 518 <br><br> 43 <br><br> 2,6-dimethylbenzoyl ethoxy <br><br> 486 <br><br> 44 <br><br> 2,6-dimethylbenzoyl chloromethyl <br><br> 490 <br><br> NMR data of the compound of Example 32: 'H-NMR (CDC13) 8 =1.21 (3H, t, J=7.4 Hz), 2.47 (2H, q, J=7.4 Hz), 3.32-3.42 (2H, m), 5.19 (IH, t, J=5.4 Hz), 7.10-7.20 (2H, m), 7.22-7.35 (4H, m), 7.43-7.54 (3H, m), 7.70-7.83 (2H, m), 8.21 (IH, d, J=7.8 Hz) <br><br> Example 45 Synthesis of the compound of the following general formula (28) which has a substituent(s) of Example 45 of Table 6 Process 1 Acylation <br><br> 3-chloro-2-nitrobenzoic acid (210mg, 1.04mmol), HOAt (141mg, 1.04mmol), DIC (161uL, 1.04mmol) and NMP (2mL) were added to the resin obtained in Process 4 of Example 1 (200mg) and stirred for 64 hours. After that, the resin was washed with DMF and dichloromethane three times each and dried under reduced pressure. <br><br> Process 2 Reduction of nitro group <br><br> 63 <br><br> The resin obtained in Process 1 was treated in accordance with Process 4 of Example 1. <br><br> Carbonyldiimidazole (844mg, 5.21mmol) and NMP (2mL) were added to the resin obtained in Process 2 and stirred at 80°C for 16 hours. After washing it with DMF and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 532 CHNO : C24H16C13N305 <br><br> Examples 46 to 54 <br><br> The compounds shown in Table 6 were synthesized by the same procedure as that of Example 45 except that respective corresponding substituted 2-nitrobenzoic acid was used in Process 1 of Example 45. Meanwhile, Rl, R2, R3 and R4 in Table 6 are a substituent(s) in the following general formula (28). <br><br> Process 3 Construction of quinazoline-2,4-dione ring <br><br> 64 <br><br> Table 6 <br><br> Example <br><br> Rl- <br><br> R2- <br><br> R3 <br><br> R4 MS Found (MH+) <br><br> 45 <br><br> chloro <br><br> H- <br><br> H- <br><br> H- <br><br> 532 <br><br> 46 <br><br> methoxy <br><br> H- <br><br> H- <br><br> H- <br><br> 528 <br><br> 47 <br><br> H- <br><br> H- <br><br> chloro <br><br> H- <br><br> 532 <br><br> 48 <br><br> H- <br><br> H- <br><br> methoxy <br><br> H- <br><br> 528 <br><br> 49 <br><br> H- <br><br> trifluoromethyl <br><br> H <br><br> H- <br><br> 566 <br><br> 50 <br><br> methyl <br><br> H- <br><br> H- <br><br> H- <br><br> 512 <br><br> 51 <br><br> H- <br><br> methoxy methoxy <br><br> H- <br><br> 558 <br><br> 52 <br><br> H- <br><br> H- <br><br> fluoro <br><br> H- <br><br> 516 <br><br> 53 <br><br> H- <br><br> H- <br><br> H- <br><br> methyl <br><br> 512 <br><br> 54 <br><br> H- <br><br> H- <br><br> H- <br><br> chloro <br><br> 532 <br><br> Example 57 Synthesis of the compound of the following general formula (29) which has a substituent(s) of Example 57 of Table 8 Process 1 Acylation <br><br> 2-fluoro-5-nitrobenzoic acid (1.63g, 8.81mmol), HOAt (1.2g, 8.81mmol), DIC (675uL, 4.36mmol) and NMP (25mL) were added to the resin obtained in Process 4 of Example 1 (lg) and stirred for 14 hours. After that, the resin was washed with DMF and dichloromethane three times each and dried under reduced pressure. <br><br> Process 2 Substitution of fluoro group with amine <br><br> Isopropylamine (400uL) and NMP (2mL) were added to the resin obtained in Process 1 (200mg) and stirred for 21 hours. After that, the resin was washed with DMF and dichloromethane three times each and dried under reduced pressure. <br><br> 65 <br><br> Process 3 Construction of quinazoline-2,4-dione ring <br><br> Carbonyldiimidazole (200mg) and trans-decahydronaphthalene (2mL) were added to the resin obtained in Process 2 and stirred at 95°C for 15 hours. After washing it with DMF, methanol and dichloromethane 5 three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> Examples 58 to 65 <br><br> The compounds shown in Table 8 were synthesized by the same procedure as that of Example 57 except that respective corresponding amine was used in Process 2 of Example 57. Meanwhile, R in Table 8 is a 15 substituent in the following general formula (29). <br><br> MS (ESI MH+) : 585 <br><br> CHNO : C27H22C12N407 <br><br> 10 <br><br> ? <br><br> 66 <br><br> Table 8 <br><br> Example <br><br> R- <br><br> MS Found (MH+) <br><br> 57 <br><br> isopropyl <br><br> 585 <br><br> 58 <br><br> sec-butyl <br><br> 599 <br><br> 59 <br><br> cyclobutyl <br><br> 597 <br><br> 60 <br><br> cyclop entyl <br><br> 611 <br><br> 61 <br><br> isobutyl <br><br> 599 <br><br> 62 <br><br> cyclohexylmethyl <br><br> 639 <br><br> 63 <br><br> methyl <br><br> 557 <br><br> 64 <br><br> cyclop r op yl <br><br> 583 <br><br> 65 <br><br> benzyl <br><br> 633 <br><br> Example 66 Synthesis of the compound of the following general formula (30) which has a substituent of Example 66 of Table 9 Process 1 Substitution of fluoro group with amine <br><br> THF solution of 2.0M methylamine (3mL) and NMP (2mL) were added to the resin obtained in Process 1 of Example 57 (150mg) and stirred for 14 hours. After that, the resin was washed with DMF and dichloromethane three times each and dried under reduced pressure. Process 2 Construction of quinazoline-2-thioxo-4-one <br><br> Thiocarbonyldiimidazole (200mg) and trans-decahydronaphthalene (2mL) were added to the resin obtained in Process 1 and stirred at 95°C for 15 hours. After washing it with DMF, methanol and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> 67 <br><br> MS (ESI MH+) : 573 CHNO : C25H18C12N406S <br><br> Examples 67 to 69 <br><br> The compounds shown in Table 9 were synthesized by the same procedure as that of Example 66 except that respective corresponding amine was used in Process 1 of Example 66. Meanwhile, R in Table 9 is a substituent in the following general formula (30). <br><br> Table 9 <br><br> Example R- MS Found (MH+) <br><br> 66 methyl 573 <br><br> 67 ethyl 587 <br><br> 68 cyclopropyl 599 <br><br> 69 benzyl 649 <br><br> Example 70 Synthesis of the compound of the following general formula <br><br> 68 <br><br> (31) which has substituents of Example 70 of Table 10 Process 1 Acylation <br><br> 2-amino-3,6-dichlorobenzoic acid (845mg, 4.10mmol), HOAt (558g, 4.10mmol), DIC (317uL, 2.05mmol) and NMP (11.5mL) were added to the resin obtained in Process 4 of Example 1 (500mg) and stirred for 24 hours. After that, the resin was washed with DMF, methanol and dichloromethane three times each and dried under reduced pressure. Process 2 Construction of quinazoline-2,4-dione ring <br><br> Carbonyldiimidazole (200mg) and trans-decahydronaphthalene (2mL) were added to the resin obtained in Process 1 (200mg) and stirred at 95 °C for 15 hours. After that the resin was washed with DMF, methanol and dichloromethane three times each and dried under reduced pressure. <br><br> Process 3 Alkylation <br><br> The resin obtained in Process 2 was alkylated in accordance with Process 6 of Example 1. <br><br> Process 4 Cleavage from resin <br><br> The intended compound was obtained by being treated in accordance with Process 7 of Example 1. <br><br> MS (ESI MH+) : 580 CHNO : C25H17C14N305 <br><br> Examples 71 to 80 <br><br> The compounds of Examples 71 to 75 were synthesized by the same procedure as that of Example 70 except that respective corresponding benzoic acid derivatives were used in Process 1 of Example 70. The same <br><br> 69 <br><br> procedure as that of Example 70 was repeated in Examples 76 to 80 except that alkylation in Process 3 of Example 70 was not conducted. Meanwhile, R in Table 10 is substituents in the following general formula (31). <br><br> r p <br><br> Table 10 <br><br> Example Rl- R2- R3- R4- R5- XI X2 MS Found <br><br> (MH+) <br><br> 70 <br><br> methyl chloro <br><br> H <br><br> H <br><br> chloro <br><br> C <br><br> C <br><br> 580 <br><br> 71 <br><br> methyl chloro <br><br> H <br><br> chloro <br><br> H <br><br> C <br><br> c <br><br> 580 <br><br> 72 <br><br> methyl <br><br> H <br><br> fluoro <br><br> H <br><br> H <br><br> c c <br><br> 530 <br><br> 73 <br><br> methyl <br><br> H <br><br> H <br><br> Br <br><br> H <br><br> c c <br><br> 591 <br><br> 74 <br><br> methyl <br><br> - <br><br> H <br><br> H <br><br> H <br><br> N <br><br> c <br><br> 513 <br><br> 75 <br><br> methyl <br><br> - <br><br> H <br><br> H <br><br> - <br><br> N <br><br> N <br><br> 514 <br><br> 76 <br><br> H <br><br> chloro <br><br> H <br><br> H <br><br> chloro <br><br> C <br><br> c <br><br> 566 <br><br> 77 <br><br> H <br><br> chloro <br><br> H <br><br> chloro <br><br> H <br><br> c c <br><br> 566 <br><br> 78 <br><br> H <br><br> H <br><br> fluoro <br><br> H <br><br> H <br><br> c c <br><br> 516 <br><br> 79 <br><br> H <br><br> - <br><br> H <br><br> H <br><br> H <br><br> N <br><br> c <br><br> 499 <br><br> 80 <br><br> H <br><br> _ <br><br> H <br><br> H <br><br> _ <br><br> N <br><br> N <br><br> 500 <br><br> 70 <br><br> Example 81 Synthesis of the compound of the following general formula (32) which has substituents of Example 81 of Table 11 Process 1 Acylation 5 The resin obtained in Process 4 of Example 1 was acylated in accordance with Process 1 of Example 70. <br><br> Process 2 Construction of triazene ring <br><br> Sodium nitrite (150mg) and acetic acid (4.5ml) were added to the resin obtained in Process 1 (90mg) and stirred for 24 hours. After 10 washing it with DMF, methanol and dichloromethane three times each and drying under reduced pressure, the intended compound was obtained by being treated in accordance with Process 7 of Example 1. <br><br> MS (ESI MH+) : 551 CHNO : C23H14C14N404 <br><br> 15 <br><br> Examples 82 and 83 <br><br> The compounds of Examples 82 and 83 shown in Table 11 were synthesized by the same procedure as that of Example 81 except that respective corresponding 2-aminobenzoic acid was used in Process 1 of 20 Example 81. Meanwhile, Rl, R2, R3 and R4 in Table 11 are substituents in the following general formula (32). <br><br> Example 84 Synthesis of the compound of the following general formula (32) which has substituents of Example 84 of Table 11 25 Process 1 Acylation, Reduction of nitro group <br><br> Acylation was conducted by using the resin obtained in Process 4 of <br><br> 71 <br><br> 10 <br><br> Example 1 (lg), 5-methoxy-2-nitrogenzoic acid (1.62g, 8.21mmol), DIC (635uL, 4.11mmol), HOAt (1.12g, 8.21mmol) and NMP (23mL). Then, the nitro group was reduced in accordance with Process 2 of Example 31. Process 2 Construction of triazene ring, Cleavage from resin <br><br> The resin obtained in Process 1 was treated in accordance with Process 2 of Example 81 and then treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 513 CHNO : C24H18C12N405 <br><br> Examples 85 to 89 <br><br> The compounds of Examples 85 to 89 shown in Table 11 were synthesized by the same procedure as that of Example 84 except that respective corresponding 2-nitrobenzoic acid was used in Process 1 of 15 Example 84. Meanwhile, Rl, R2, R3 and R4 in Table 11 are substituents in the following general formula (32). <br><br> Example 90 Synthesis of the compound of the following general formula (32) which has substituents of Example 90 of Table 11 20 Process 1 Construction of triazene ring, Cleavage from resin <br><br> The resin obtained in Process 2 of Example 31 was treated in accordance with Process 2 of Example 81 and then treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 483 25 CHNO : C23H16C12N404 <br><br> 72 <br><br> % <br><br> 5 <br><br> • 10 <br><br> 15 <br><br> Table 11 <br><br> Example <br><br> Rl- <br><br> R2- <br><br> R3 <br><br> R4 <br><br> MS Fou <br><br> 81 <br><br> chloro <br><br> H- <br><br> H- <br><br> chloro <br><br> 551 <br><br> 82 <br><br> chloro <br><br> H- <br><br> chloro <br><br> H- <br><br> 551 <br><br> 83 <br><br> H- <br><br> fluoro <br><br> H- <br><br> H- <br><br> 501 <br><br> 84 <br><br> H- <br><br> H- <br><br> methoxy <br><br> H- <br><br> 513 <br><br> 85 <br><br> H- <br><br> H- <br><br> fluoro <br><br> H- <br><br> 501 <br><br> 86 <br><br> methyl <br><br> H- <br><br> H- <br><br> H- <br><br> 497 <br><br> 87 <br><br> H- <br><br> H- <br><br> chloro <br><br> H- <br><br> 517 <br><br> 88 <br><br> chloro <br><br> H- <br><br> H- <br><br> H- <br><br> 517 <br><br> 89 <br><br> H- <br><br> H- <br><br> H- <br><br> methyl <br><br> 497 <br><br> 90 <br><br> H- <br><br> H- <br><br> H- <br><br> H- <br><br> 483 <br><br> Example 91 Synthesis of the compound of the following general formula (33) which has substituents of Example 91 of Table 12 Process 1 Acylation, Reduction of nitro group <br><br> Acylation and reduction of a nitro group were conducted in accordance with Process 1 of Example 84 by using the resin obtained in <br><br> 73 <br><br> Process 4 of Example 1. <br><br> Process 2 Cyclization by ortho ester and Cleavage from resin <br><br> Tetraethoxymethane (800ul), acetic acid (200ul), and NMP (2ml) were added to the resin obtained in Process 1 (150mg) and stirred at 55°C 5 for 15 hours. After washing it with DMF, methanol and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 556 10 CHNO : C27H23C12N306 <br><br> Examples 92 to 94 <br><br> The compounds of Examples 92 to 94 shown in Table 12 were synthesized by the same procedure as that of Example 91 except that 15 respective corresponding 2-nitrobenzoic acid was used in Process 1 of Example 91. Meanwhile, Rl, R2, R3 and R4 in Table 12 are substituents in the following general formula (33). <br><br> Example 95 Synthesis of the compound of the following general formula 20 (33) which has substituents of Example 95 of Table 12 Process 1 Acylation <br><br> 2-amino-4-fluorobenzoic acid (636mg, 4.10mmol), HOAt (558g, 4.10mmol), DIC (317uL, 2.05mmol) and NMP (11.5mL) were added to the resin obtained in Process 4 of Example 1 (500mg) and stirred for 24 hours. 25 After that, the resin was washed with DMF, methanol and dichloromethane three times each and dried under reduced pressure. <br><br> 74 <br><br> Process 2 Cyclization with ortho ester and Cleavage from resin <br><br> The resin obtained in Process 1 was cyclized in accordance with Process 2 of Example 91 and then the intended compound was obtained by being treated in accordance with Process 7 of Example 1. <br><br> MS (ESI MH+) : 544 CHNO : C26H20C12FN305 <br><br> 81 <br><br> 0 R4 <br><br> R2 R3 <br><br> VV <br><br> Sf0H <br><br> 0 <br><br> (33) <br><br> Table 12 <br><br> Example <br><br> Rl- <br><br> R2- <br><br> R3 <br><br> R4 <br><br> MS Found (MH+) <br><br> 91 <br><br> H- <br><br> H- <br><br> methoxy <br><br> H- <br><br> 556 <br><br> 92 <br><br> H- <br><br> H- <br><br> fluoro <br><br> H- <br><br> 544 <br><br> 93 <br><br> H- <br><br> H- <br><br> chloro <br><br> H- <br><br> 560 <br><br> 94 <br><br> H- <br><br> H- <br><br> H- <br><br> m ethyl <br><br> 540 <br><br> 95 <br><br> H- <br><br> fluoro <br><br> H- <br><br> H- <br><br> 544 <br><br> Example 96 Synthesis of the compound of the following general formula (34) which has a substituent of Example 96 of Table 13 Process 1 Acylation, Reduction of nitro group <br><br> 75 <br><br> Acylation was conducted by reacting the resin obtained in Process 4 of Example 1 (lg) with 6-methyl-2-nitrobenzoic acid (1.49g, 8.21mmol), DIC (635uL, 4.11mmol), HOAt (1.12g, 8.21mmol) and NMP (23mL) for 18 hours. Then, the nitro group was reduced in accordance with Process 2 of Example 31. <br><br> Process 2 Cyclization <br><br> Carbonyldiimidazole (400mg) and NMP (2mL) were added to the resin obtained in Process 1 (200mg) and stirred at 95°C for 15 hours. After that, the resin was washed with DMF, methanol and dichloromethane three times each and dried under reduced pressure. Process 3 Alkylation <br><br> Ethyl iodide (200ul) and tetramethyl guanidine (200ul) were added to the resin obtained in Process 2 (200mg) and stirred for 24 hours. After washing it with water, DMF, methanol and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 540 CHNO : C27H23C12N305 <br><br> Example 97 <br><br> The compounds of Examples 97 shown in Table 13 was synthesized by the same procedure as that of Example 96 except that the corresponding halide was used in Process 3 of Example 96. Meanwhile, R in Table 13 is a substituent in the following general formula (34). <br><br> 76 <br><br> ? <br><br> Table 13 <br><br> Example R- <br><br> MS Found (MH+) <br><br> 96 <br><br> ethyl <br><br> 540 <br><br> 97 <br><br> benzyl <br><br> 602 <br><br> Example 98 Synthesis of the compound of the following general formula (35) which has substituents of Example 98 of Table 14 Process 1 Sulfonamidation, Reduction of nitro group <br><br> 2-nitrobenzenesulfonyl chloride (450mg), 2,6-lutidine (450ul) and dichloromethane (10ml) were added to the resin obtained in Process 4 of Example 1 (400mg) and stirred for 14 hours. After washing it with DMF, methanol and dichloromethane three times each and drying under reduced pressure, the nitro group was reduced in accordance with Process 2 of Example 31. <br><br> Process 2 Cyclization <br><br> Carbonyldiimidazole (400mg) and NMP (2mL) were added to the resin obtained in Process 1 (200mg) and stirred at 95°C for 15 hours. After that the resin was washed with DMF, methanol and dichloromethane three times each and dried under reduced pressure. <br><br> 77 <br><br> Process 3 Alkylation, Cleavage from resin <br><br> Methyl iodide (400ul), diisopropylethylamine (400ul) and NMP (2ml) were added to the resin obtained in Process 2 (200mg) and stirred for 17 hours. After washing it with water, DMF, methanol and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS(ESI MH+) : 548 CHNO : C24H19C12N306S <br><br> Examples 99 to 103 <br><br> The compounds shown in Table 14 were synthesized by the same procedure as that of Example 98 except that respective corresponding sulfonyl chlorides were used in Process 1 of Example 98. Meanwhile, Rl, R2, R3, R4 and R5 in Table 14 are substituents in the following general formula (35) and the same procedure as that of Example 98 was repeated in Examples 101 to 103 except that alkylation in Process 3 of Example 98 was not conducted. <br><br> R5 Rl <br><br> 78 <br><br> Table 14 <br><br> Example <br><br> Rl- <br><br> R2- <br><br> R3- <br><br> R4- <br><br> R5- <br><br> MS F( <br><br> 98 <br><br> H- <br><br> H- <br><br> H- <br><br> H- <br><br> methyl <br><br> 548 <br><br> 99 <br><br> H- <br><br> methoxy <br><br> H- <br><br> H- <br><br> methyl <br><br> 578 <br><br> 100 <br><br> H- <br><br> trifluoromethyl <br><br> H- <br><br> H- <br><br> methyl <br><br> 616 <br><br> 101 <br><br> H- <br><br> H- <br><br> H- <br><br> H- <br><br> H- <br><br> 534 <br><br> 102 <br><br> H- <br><br> methoxy <br><br> H- <br><br> H- <br><br> H- <br><br> 564 <br><br> 103 <br><br> H- <br><br> trifluoromethyl <br><br> H- <br><br> H- <br><br> H- <br><br> 602 <br><br> 10 Example 104 Synthesis of the compound of the following general formula (36) which has a substituent of Example 104 of Table 15 Process 1 Acylation, Construction of quinazoline-2,4-dione ring, Alkylation and Reduction of nitro group Acylation was conducted by using the resin obtained in Process 4 of 15 Example 1 (500mg), 2-amino-5-nitrobenzoic acid (746mg, 4.10mmol), DIC (317ul, 2.05mmol), HOAt (558mg, 4.10mmol) and NMP (11.5ml). Then quinazoline-2,4-dione ring was constructed in accordance with Process 2 of Example 96 and alkylation was conducted in accordance with Process 6 of Example 1. Futher, the nitro group was reduced in the same way of 20 Process 4 of Example 1. <br><br> Process 2 Acylation <br><br> Acetic anhydride (600ul), pyridine (600ul) and NMP (3ml) were added to the resin obtained in Process 1 and stirred for 19 hours. After washing it with water, DMF, methanol and dichloromethane three 25 times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> 79 <br><br> MS (ESI MH+) : 569 CHNO : C27H22C12N406 <br><br> Examples 105 to 107 <br><br> The compounds shown in Table 15 were synthesized by the same procedure as that of Example 104 except that the corresponding acid chloride was used in Process 2 of Example 104. Meanwhile, R in Table 15 is a substituent in the following general formula (36) and the same procedure as that of Example 104 was repeated in Example 107 except that acylation in Process 2 of Example 104 was not conducted. <br><br> Table 15 <br><br> Example R- <br><br> MS Found (MH+) <br><br> 104 <br><br> acetyl <br><br> 569 <br><br> 105 <br><br> methoxyacetyl <br><br> 599 <br><br> 106 <br><br> pivaloyl <br><br> 611 <br><br> 107 <br><br> H <br><br> 527 <br><br> 80 <br><br> Example 108 Synthesis of the compound of the following general formula (37) which has a substituent of Example 108 of Table 16 Process 1 Acylation 5 The resin obtained in Process 4 of Example 1 (lg) was acylated by using 5-fluoro-2-nitrobenzoic acid (1.63g, 8.81mmol), DIC (675ul, 4.36mmol), HOAt (1.2g, 8.81mmol) and NMP (25ml). <br><br> Process 2 Substitution of fluoro group with amine, <br><br> Reduction of nitro group 10 THF solution of 2.0M dimethylamine (3mL) and NMP (2mL) were added to the resin obtained in Process 1 (200mg) and stirred for 14 hours. After washing it with water, DMF and dichloromethane three times each and drying under reduced pressure, the nitro group was reduced in accordance with Process 2 of Example 31. <br><br> 15 Process 3 Construction of quinazoline-2,4-dione ring <br><br> The resin obtained in Process 2 was treated in accordance with Process 2 of Example 96 to construct quinazoline-2,4-dione ring. <br><br> Process 4 Alkylation <br><br> Triphenylphosphine (520mg), methanol (80ul), 40% toluene 20 solution of diisopropylazodicarboxylic acid (1ml) and dichloromethane (2ml) were added to the resin obtained in Process 3 and stirred for 7 hours. After washing it with water, DMF, methanol and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> 25 MS (ESI MH+) : 555 <br><br> CHNO : C27H24C12N405 <br><br> 81 <br><br> mmmm <br><br> Examples 109 to 111 <br><br> The compounds of Examples 109^ to/111 shown in Table 16 were synthesized by the same procedure as that/of Example 108 except that the corresponding amine was used in Process 2 of Example 108. Meanwhile, R in Table 16 is a substituent in the? following general formula (37). <br><br> Example 112 Synthesis of the compound of the following general formula (37) which has a substituent of Example 112 of Table 16 10 Process 1 Substitution of fluoro group by amine, <br><br> Reduction of nitro group THF solution of 2.0M^dimethylamine (3mL) and NMP (2mL) were added to the resin obtained inJProcess 1 (200mg) and stirred for 14 hours. After washing it with water,/DMF and dichloromethane three times each 15 and drying under reduced/ pressure, the nitro group was reduced in accordance with Process 2/of Example 31. <br><br> Process 3 Construction of quinazo 1 ine-2,4-dione ring <br><br> The resin obtained in Process 2 was treated in accordance with Process 2 of Example 96 to consfruct quinazoline - 2,4-dione ring 20 Process 4 Alkylatioi <br><br> Methyl iodide (400ul), diisopropylethylamine (400ul) and NMP (2ml) were added Zo the resin obtained in Process 3 (200mg) and stirred for 17 hours, j After washing it, with water, DMF, methanol and dichloromethane three times each and drying under reduced pressure, the 25 resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> 82 <br><br> Examples 109 to 111 <br><br> The compounds of Examples 109 to 111 shown in Table 16 were synthesized by the same procedure as that of Example 108 except that the corresponding- amine was used in Process 2 of Example 108. Meanwhile, R in Table 16 is a substituent in the following general formula (37). <br><br> Example 112 Synthesis of the compound of the following general formula (37) which has a substituent of Example 112 of Table 16 Process 1 Substitution of fluoro group by amine, <br><br> Reduction of nitro group THF solution of 2.0M dimethylamirie (3mL) and NMP (2mL) were added to the resin (200mg) obtained in Process 1 of Example 108 and stirred for 14 hours. After washing it with water, DMF and dichloromethane three times each and drying under reduced pressure, the nitro group was reduced in accordance with Process 2 of Example 31. <br><br> Process 3 Construction of q u i n a z o 1 i 11 e - 2,4 - d i o n e ring <br><br> The resin obtained in Process 2 was treated in accordance with Process 2 of Example 96 to construct qu in a z olin e - 2,4 - di on e ring Process 4 Alkylation <br><br> Methyl iodide (400ul), diisopropylethylamine (400ul) and NMP (2ml) were added to the resin obtained in Process 3 (200mg) and stirred for 17 hours. After washing it with water, DMF, methanol and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> nmuIeCTUAi ■ <br><br> 0!' ■■■&gt;:/. <br><br> 82 ! e rca sa <br><br> R Ei. G E ! V i::: D <br><br> MS (ESI MH+) : 569 CHNO : C28H27C12N405 <br><br> Example 113 <br><br> The compound of Example 113 shown in Table 16 was synthesized by the same procedure as that of Example 112 except that the corresponding amine was used in Process 1 of Example 112. Meanwhile, R in Table 16 is a substituent in the following general formula (37). <br><br> Table 16 <br><br> Example R- <br><br> MS Found (MH+) <br><br> 108 <br><br> dimethylamino <br><br> 555 <br><br> 109 <br><br> ethylmethylamino <br><br> 569 <br><br> 110 <br><br> pyrrolidyl <br><br> 581 <br><br> 111 <br><br> diethylamino <br><br> 583 <br><br> 83 <br><br> 112 <br><br> formula X 1 <br><br> 569 <br><br> 113 <br><br> formula X 2 <br><br> 595 <br><br> Formulae XI and X2 are described below. <br><br> NMR data of the compound of Example 108: 'H-NMR (400 MHz, DMSO-d6) 5 2.94 (3H, m), 3.02 (IH, dd, ^10.2, 14.1 Hz), 3.22 (IH, m, J=4.4, 14.1 Hz), 3.49 (3H, s), 4.82 (IH, m), 7.17 (2H, d), 7.24 (IH, d), 7.30 (IH, m), 7.36-7.45 (5H, m), 9.15 (IH, d). 13C-NMR (100 MHz, DMSO-d6) 8 30.90, 36.64, 40.77, 53.68, 109.21, 116.00, 116.22, <br><br> 121.37, 128.26, 128.93, 129.90, 131.23, 131.82, 132.10, 135.23, 136.56, 137.57, 146.72, <br><br> 150.38, 161.88, 163.91, 172.72. <br><br> Formula XI <br><br> Formula X2 <br><br> Example 114 Synthesis of the compound of the following general formula (38) which has substituents of Example 114 of Table 17 Process 1 Alkylation <br><br> 2,6-dichlorobenzyl alcohol (531mg), triphenylphosphine (786mg), dichloromethane (3ml) and 40% toluene solution of diisopropylazodicarboxylic acid (1.5ml) were added to the resin obtained in Process 5 of Example 1 (150mg) and stirred for 14 hours. After washing it with water, DMF, methanol and dichloromethane three times <br><br> 84 <br><br> each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 656 CHNO : C31H21C14N305 <br><br> 5 <br><br> Examples 115 to 123 <br><br> The compounds of Examples 115 to 123 shown in Table 17 were synthesized by the same procedure as that of Example 114 except that respective corresponding alcohol was used in Process 1 of Example 114. 10 Meanwhile, Rl, R2, R3, R4, R5 and n in Table 17 are substituents in the following general formula (38). <br><br> Example 124 Synthesis of the compound of the following general formula (38) which has substituents of Example 124 of Table 17 Process 1 Acylation 15 The resin obtained in Process 4 of Example 1 (150mg) was acylated by using N-phenylanthranilic acid (437mg, 2.05mmol), HOAt (279mg, 2.05mmol), DIC (106ul, 1.03mmol) and NMP(6ml). <br><br> Process 2 Construction of quinazoline-2,4-dione ring <br><br> The resin obtained in Process 1 was treated in accordance with 20 Process 2 of Example 96. After quinazoline-2,4-dione ring was constructed, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 574 CHNO : C30H21C12N305 <br><br> 25 <br><br> 85 <br><br> R3 R2 <br><br> Example Rl- <br><br> Table 17 R2- R3- R4- R5- <br><br> n= MS Found (MH+) <br><br> 10 <br><br> 15 <br><br> 114 <br><br> chloro <br><br> H <br><br> H <br><br> H <br><br> chloro 1 <br><br> 656 <br><br> 115 <br><br> H <br><br> chloro chloro <br><br> H <br><br> H 1 <br><br> 656 <br><br> 116 <br><br> chloro <br><br> H <br><br> chloro <br><br> H <br><br> H 1 <br><br> 656 <br><br> 117 <br><br> H <br><br> H <br><br> chloro <br><br> H <br><br> H 1 <br><br> 622 <br><br> 118 <br><br> H <br><br> H <br><br> methyl <br><br> H <br><br> H 1 <br><br> 602 <br><br> 119 <br><br> chloro <br><br> H <br><br> H <br><br> H <br><br> H 1 <br><br> 622 <br><br> 120 <br><br> methyl <br><br> H <br><br> H <br><br> H <br><br> H 1 <br><br> 602 <br><br> 121 <br><br> chloro <br><br> H <br><br> H <br><br> H <br><br> fluoro 1 <br><br> 640 <br><br> 122 <br><br> H <br><br> H <br><br> H <br><br> H <br><br> H 1 <br><br> 588 <br><br> 123 <br><br> H <br><br> H <br><br> H <br><br> H <br><br> H 2 <br><br> 602 <br><br> 124 <br><br> H <br><br> H <br><br> H <br><br> H <br><br> H 0 <br><br> 574 <br><br> 86 <br><br> Example 125 Synthesis of the compound of the following general formula (39) which has a substituent of Example 125 of Table 18 Process 1 Synthesis of iminophosphine 5 Triphenylphosphine (7.86g), 40% toluene solution of diisopropylazodicarboxylic acid (30ml) and toluene (30ml) were added to the resin obtained in Process 4 of Example 1 (lg) and stirred for 16 hours. After that, the resin was washed with dichloromethane ten times and dried under reduced pressure. <br><br> 10 Process 2 Synthesis of carbodiimide, nucleophilic addition of amine and ring closure <br><br> Methyl 2-isocyanatebenzoate (200mg) and dichloromethane (1ml) were added to the resin obtained in Process 1 (lOOmg), stirred for 1 hour and washed with DMF and dichloromethane three times each. <br><br> 15 Cyclobutylamine (600ul) and NMP (3ml) were added to the obtained resin and stirred for 13 hours. After washing it with DMF, methanol and dichloromethane and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> 20 MS(ESI MH+) : 551 <br><br> CHNO : C28H24C12N404 <br><br> Examples 126 to 130 <br><br> The compounds shown in Table 18 were synthesized by the same <br><br> 25 procedure as that of Example 125 except that respective corresponding amine was used in Process 2 of Example 125. Meanwhile, R in Table 18 <br><br> 87 <br><br> is a substituent in the following general formula (39). <br><br> Table 18 <br><br> Example R- MS Found (MH+) <br><br> 125 cyclobutylamino 551 <br><br> 126 isobutylamino 553 <br><br> 127 isopropylamino 539 <br><br> 128 dimethylamino 525 <br><br> 129 ethylmethyamino 539 <br><br> 130 azetidino 537 <br><br> Example 131 Synthesis of the compound of the following general formula (40) which has a substituent of Example 131 of Table 18 Process 1 Substitution of fluoro group with amine <br><br> 88 <br><br> THF solution of 2.0M methylamine (3mL) and NMP (2mL) were added to the resin obtained in Process 1 of Example 57 (150mg) and stirred for 14 hours. Then the resin was washed with DMF and dichloromethane three times each and dried under reduced pressure. Process 2 Ring closure with thionyl chloride <br><br> Triazole (250mg), thionyl chloride (80ul), dichloromethane (1ml) and diisopropylethylamine (400ul) were added to the resin obtained in Process 1 and stirred for 15 hours. After washing it with DMF, methanol and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 576 CHNO : C24H18C12N407S <br><br> Examples 132 and 133 <br><br> The compounds shown in Table 18 were synthesized by the same procedure as that of Example 131 except that respective corresponding amine was used in Process 1 of Example 131. Meanwhile, R in Table 18 is a substituent in the following general formula (40). <br><br> 89 <br><br> Table 18 <br><br> Example R- MS Found (MH+) <br><br> 131 methyl 576 <br><br> 5 132 ethyl 590 <br><br> 133 benzyl 652 <br><br> Example 134 Synthesis of the compound of the following general formula (41) which has a substituent of Example 134 of Table 19 10 Process 1 Acylation, Removal of Fmoc group <br><br> Acylation was conducted by reacting the resin obtained in Process 4 of Example 1 (500mg) with Fmoc- j3 -alanine (810mg, 2.60mmol), DIC (200ul, 1.30mmol), HOAt (351mg, 2.60mmol) and NMP (10ml) for 18 hours and then Fmoc group was removed in accordance with Process 2 of 15 Example 1. <br><br> Process 2 Ring closure with carbonyldiimidazole <br><br> Carbonyldiimidazole (400mg) and NMP (2ml) were added to the resin obtained in Process 1 and stirred for 3 hours. Then, the resin was washed with DMF, methanol and dichloromethane three times each and <br><br> 90 <br><br> dried under reduced pressure. Further, NMP (2ml) was added to the obtained resin and stirred at 95°C for 15 hours. After washing it with DMF, methanol and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of 5 Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 450 CHNO : C20H17C12N305 <br><br> Example 135 Synthesis of the compound of the following general formula 10 (41) which has a substituent of Example 135 of Table 19 Process 1 2-nitrosulfonylation, alkylation <br><br> 2-nitrosulfonyl chloride (176mg), 2,6-lutidine (184ul) and dichloromethane (4ml) were added to the resin obtained in Process 1 of Example 134 (250mg) and stirred at 4°C for 16 hours. After washing it 15 with DMF, methanol and dichloromethane three times each and drying under reduced pressure, the obtained resin was alkylated in accordance with Process 4 of Example 108. <br><br> Process 2 Removal of 2-nitrosulfonyl group <br><br> 2-mercaptoethanol (600ul), diazabicycloundecene (300ul) and NMP 20 (3ml) were added to the resin obtained in Process 1 and stirred for 1 hour. Then, the resin was washed with DMF, methanol and dichloromethane three times each and dried under reduced pressure. <br><br> Process 3 Ring closure with carbonyldiimidazole <br><br> Carbonyldiimidazole (500mg) and dichloromethane (2.5ml) were 25 added to the resin obtained in Process 2 and stirred for 10 hours. Then, the resin was washed with DMF, methanol and dichloromethane three <br><br> 91 <br><br> times each and dried under reduced pressure. Further, potassium carbonate (200mg) and NMP (1ml) were added to the obtained resin and stirred at 95 °C for 17 hours. After washing it with water, DMF, methanol and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 464 CHNO : C21H19C12N305 <br><br> ? <br><br> O^N <br><br> rV <br><br> 0 <br><br> (41) <br><br> Table 19 <br><br> Example R- MS Found (MH+) <br><br> 134 H 450 <br><br> 135 methyl 464 <br><br> Example 136 Synthesis of the compound of the following general formula (73) which has substituents of Example 136 of Table 20 Process 1 Acylation, removal of 0-acyl group <br><br> Salicylic acid (74mg, 0.535mmol), PyBOP (278mg, 0.535mmol), HOBt (120mg, 0.89mmol), DIEA (0.186ml, 1.068mmol) and DMF (3.6ml) <br><br> 92 <br><br> were added to the resin obtained in Process 4 of Example 1 and stirred for 19 hours. Then, the resin was washed with DMF, methanol and dichloromethane eight times each and 30% ethanolamine/DMF (5ml) was added to the obtained resin and stirred for 4 hours. The resin was again washed with DMF, methanol and dichloromethane eight times each. Process 2 Ring closure with carbonyldiimidazole, cleavage from resin Carbonyldiimidazole (98mg) and DCM (6ml) were added to the resin obtained in Process 1 (50mg), stirred for 1 hour and washed with dichloromethane five times. Further, dichloromethane (4ml) was added to the obtained resin, stirred at room temperature for 3 hours and washed with dichloromethane five times. Then, the intended compound was obtained by cleavage from the resin and HPLC purification in the same way of Process 7 of Example 1 (3mg). <br><br> MS (ESI MH+) : 499 CHNO : C24H16CL2N206 <br><br> Examples 137 to 144 <br><br> The compounds shown in Table 20 were synthesized by the same procedure as that of Example 136 except that the corresponding salicylic acid was used in Process 1 of Example 136. Meanwhile, Rl, R2 and R3 in Table 20 are substituents in the following general formula (73). <br><br> 93 <br><br> Table 20 <br><br> Example <br><br> Rl <br><br> R2 <br><br> R3 <br><br> MS Found <br><br> 136 <br><br> H <br><br> H <br><br> H <br><br> 499 <br><br> 5 <br><br> 137 <br><br> -CH=CH- <br><br> CH=CH- <br><br> H <br><br> 549 <br><br> 138 <br><br> H <br><br> H <br><br> CHO <br><br> 527 <br><br> 139 <br><br> H <br><br> OMe <br><br> H <br><br> 529 <br><br> 140 <br><br> OH <br><br> H <br><br> H <br><br> 515 <br><br> 141 <br><br> H <br><br> OH <br><br> H <br><br> 515 <br><br> 10 <br><br> 142 <br><br> H <br><br> NH2 <br><br> H <br><br> 514 <br><br> 143 <br><br> H <br><br> H <br><br> CI <br><br> 533 <br><br> 144 <br><br> H <br><br> H <br><br> F <br><br> 517 <br><br> Example 145 Synthesis of the compound of the following general formula 15 (74) <br><br> Process 1 Ring closure with thiocarbonyldiimidazole <br><br> Thiocarbonyldiimidazole (500mg) and dichloromethane (2.5ml) <br><br> 94 <br><br> were added to the resin obtained in Procesi 1 0/Example 98 and stirred at room temperature for 16 hours. Theji tl/e resin was washed with methanol, DMF and dichloromethane t/iree/times each and dried under reduced pressure. <br><br> Process 2 Cleavage from resin <br><br> The resin obtained in Process^ 1 (L0Omg) was treated in accordance with Process 7 of Example 1 to obt/in if.2mg of the intended compound. <br><br> MS (ESI MH+) : 550 CHNO : C23H17C12N305S2 <br><br> (74) <br><br> 10 <br><br> 15 <br><br> Example 146 Synth/sis ff the compound of the following general formula (75) <br><br> Methylation and ileavjkge from resin <br><br> Diisopropylethyj/a 111 il/e (200ul), methyl iodide (lOOul) and NMP (3ml) were added to/lOOmg of the resin obtained in Process 1 and stirred at room temper ure/f0r 16 hours. After washing it with methanol, DMF and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain 13mg of tlie intended compound. <br><br> 95 <br><br> were added to the resin obtained in Process 1 of Example 98 and stirred at room temperature for 16 hours. Then the resin was washed with methanol, DMF and dichloromethane three times each and dried under reduced pressure. <br><br> 5 : Process 2 Cleavage from resin <br><br> The resin obtained in Process 1 (lOOmg) was treated in accordance with Process 7 of Example 1 to obtain 1.2mg of the intended compound. <br><br> MS (ESI MH+) : 550 CHNO : C23H17C12N305S2 <br><br> Example 146 Synthesis of the compound of the following- general formula (75) <br><br> Methylation and cleavage from resin <br><br> Diisopropylethylamine (200ul), methyl iodide (lOOul) and NMP (3ml) were added 15 to 100 mg of the resin obtained in Process 1 of Example 145 and stirred at room, temperature for 16 hours. After washing it with methanol, DMF and dichloromethane three times each and drying under reduced pressure, the resin was treated in accordance with Process 7 of Example 1 to obtain 13mg of the intended compound. <br><br> H <br><br> (74) <br><br> 10 <br><br> 11' I I i i' 11' / <br><br> 0'' <br><br> 95 <br><br> MS (ESI MH+) : 564 <br><br> CHNO : C24H19C12N305S2 <br><br> CI 0 <br><br> CI <br><br> Ypo <br><br> 0 0 <br><br> (75) <br><br> 5 Example 147 Synthesis of the compound of the following general formula (76) which has substituents of Example 147 of Table 21 <br><br> The resin obtained in Process 4 of Example 1 was prepared to be a starting material. 500mg of 2-nitrobenzylbromide, 500nl of diisopropylethylamine and 5ml of NMP were added to lOOmg of the said 10 resin and stirred at room temperature for 12 hours. After removing the reaction solvent, the resin was washed with dichloromethane, NMP and dichloromethane three times each. NMP (0.5mL) • EtOH(3mL) solution of SnCl2 • 2HaO (1.5g) was added to the obtained resin and reacted for 16 hours. The reaction solvent was removed and the resin was washed with 15 NMP and dichloromethane three times each. Further, 200mg of 2-nitrobenzenesulfonyl chloride, 400jil of 2,6-lutidine and 2ml of dichloromethane were added to the obtained resin and reacted at 0°C for 24 hours. After removing the reaction solvent, the resin was washed with dichloromethane, NMP and dichloromethane three times each. 20 200^1 of methyl iodide, 0.5g of potassium carbonate and 7.5ml of NMP <br><br> 96 <br><br> were added to the sulfonamide resin and shaken at 45°C for 24 hours. After removing the reaction solvent, the resin was washed with dichloromethane, NMP and dichloromethane three times each. 200jLtl of Diazabicycloundecene, 400jil of 2-mercaptoethanol and 500fil of NMP 5 were added to the obtained resin and stirred at room temperature for 24 hour. Then, the reaction solvent was removed and the resin was washed with dichloromethane, NMP and dichloromethane three times each. Further, 500mg of carbonyldiimidazole and 4ml of dichloromethane were added to the obtained resin and shaken at 50°C form 24 hours. Then, 10 the reaction solvent was removed and the resin was washed with dichloromethane, NMP and dichloromethane three times each and dried under reduced pressure. The obtained resin was treated with 100% trifluoroacetic acid for 1 hour and the resin was filtrated. The obtained filtrate was concentrated and purified by reverse phase HPLC 15 (SYMMETRY 19*50mm mobile phase water: acetonitrile both of which contained 0.1% TFA) to obtain 0.9mg of the intended compound. <br><br> MS (ESI MH+) : 498, 500 CHNO : C25H21C12N304 <br><br> 20 Example 148 Synthesis of the compound of the following general formula (76) which has substituents of Example 148 of Table 21 <br><br> The resin as a starting material was prepared in the same way as that of Example 147. Thiocarbonyldiimidazole instead of carbonyldiimidazole used in Example 147 was used to obtain 0.8mg of the 25 intended compound. <br><br> MS (ESI MH+) : 514, 516 <br><br> 97 <br><br> CHNO : C25H21C12N303S <br><br> Example 149 Synthesis of the compound of the following general formula (76) which has substituents of Example 149 of Table 21 5 The resin obtained in Process 4 in Example 1 was prepared to be a starting material. 500mg of 2-nitrobenzylbromide, 500 ^1 of diisopropylethylamine and 5ml of NMP were added to lOOmg of the resin and stirred at room temperature for 12 hours. After removing the reaction solvent, the resin was washed with dichloromethane, NMP and 10 dichloromethane three times each. NMP (0.5mL) • EtOH (3mL) solution of SnCl2 • 2H20 (1.5g) was added to the obtained resin and reacted for 16 hours. After removing the reaction solvent, the resin was washed with DMF and dichloromethane three times each. Further, 500mg of carbonyldiimidazole and 4ml of dichloromethane were added to the resin 15 and shaken at 50°C for 24 hours. After removing the reaction solvent, the resin was washed with dichloromethane, NMP and dichloromethane three times each and dried under reduced pressure. The obtained resin was treated with 100% solution of trifluoroacetic acid for 1 hour and the resin was filtrated. The obtained filtrate was concentrated and purified 20 by reverse phase HPLC (SYMMETRY 19*50mm mobile phase water: acetonitrile both of which contained 0.1% TFA) to obtain 0.9mg of the intended compound. <br><br> MS (ESI MH+) : 484, 486 CHNO : C24H19C12N304 <br><br> 25 <br><br> Example 150 Synthesis of the compound of the following general formula <br><br> 98 <br><br> (76) which has substituents of Example 150 of Table 21 <br><br> 1.6mg of the intended compound was synthesized in the same way as that of Example 149 by using 2-fluoro-6-nitrobenzyl bromide. <br><br> MS (ESI MH+) : 502, 504 CHNO : C24H18C12FN304 <br><br> Examples 151 to 159 <br><br> The compounds shown in Table 21 were synthesized by the same procedure as that of Example 147 except that respective corresponding alkylation reagent was used instead of methyl iodide used in the synthesizing process of Example 147. Meanwhile, Rl, RA1, RA2, RA3 and RA4 in Table 21 are substituents in the following general formula <br><br> (76). <br><br> 81 ra1 <br><br> ra2 <br><br> ra3 <br><br> (76) <br><br> 99 <br><br> Table 21 <br><br> Example <br><br> U <br><br> Rl <br><br> RAl <br><br> RA2 <br><br> RA3 <br><br> RA4 <br><br> MS Found i <br><br> 147 <br><br> CO <br><br> Me <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 498,500 <br><br> 148 <br><br> cs <br><br> Me <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 514,516 <br><br> 5 <br><br> 149 <br><br> CO <br><br> H <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 484,486 <br><br> 150 <br><br> CO <br><br> H <br><br> H <br><br> H <br><br> H <br><br> F <br><br> 502,504 <br><br> 151 <br><br> CO <br><br> Et <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 512,514 <br><br> 152 <br><br> CO <br><br> n-Pr <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 526,528 <br><br> 153 <br><br> CO <br><br> n-Bu <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 540,542 <br><br> 10 <br><br> 154 <br><br> CO <br><br> iso-Pr <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 526,528 <br><br> 155 <br><br> CO <br><br> iso-Bu <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 540,542 <br><br> 156 <br><br> CO <br><br> sec-Butyl <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 540,542 <br><br> 157 <br><br> CO <br><br> 2-Phenylethyl <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 588,590 <br><br> 158 <br><br> CO <br><br> Benzyl <br><br> H <br><br> H <br><br> H <br><br> H <br><br> 574,576 <br><br> 15 <br><br> 159 <br><br> CO <br><br> 2,6-DifluoroBenzyl H <br><br> H <br><br> H <br><br> H <br><br> 610,612 <br><br> Example 160 Synthesis of (2S)-2-amino-3-[4-(l-methyl-2,4-dioxo-l,3-dihydroquinazoline-3-yl)phenyl] propionic acid methylester hydrochloride Process 1 Synthesis of 4-nitrophenylalanine methylester 20 hydrochloride <br><br> 1.49ml of thionylchloride and 25ml of methanol were mixed, cooled by dry-ice-acetonitrile bath and 2g of Boc-Phe(4-N02)-OH was added thereto. After stirring it for 1 hour and removing the bath, the solution was warmed up till room temperature and further stirred for 2.5 hours. 25 The reaction solvent was concentrated under reduced pressure to obtain 1.83g of the intended compound as white powder. <br><br> 100 <br><br> MS (ESI MH+) : 225 CHNO : C10H12N204 HC1 <br><br> Process 2 Synthesis of N-tertiary butyloxycarbonyl-4-nitrophenylalanine methylester <br><br> 521mg of 4-nitrophenylalanine methylester hydrochloride obtained in Process 1 was dissolved in the solution of 554^.1 of triethylamine in 10ml of tetrahydrofuran and 480mg of (Boc)20 was added thereto under being cooled with ice. The ice bath was removed 5 minutes later and the solution was stirred for 4.5 hours. The ethyl acetate (15ml) was added to the reaction solvent and washed with 10% aqueous solution of citric acid, water and saturated NaCl aqueous solution respectively. After drying the ethyl acetate layer, the solution was concentrated under reduced pressure to obtain 735mg of the intended compound. <br><br> MS (ESI MH+) : 325 CHNO : C15H20N206 <br><br> Process 3 Synthesis of (2S)-2-tertiary butyloxycarbonylamino-3-(4-aminophenyl) propionic acid methylester. <br><br> 648mg of N-tertiary butyloxycarbonyl-4-nitrophenylalanine methylester obtained in Process 2 was dissolved in 20ml of ethanol and 150mg of 5% Pd/C was added and the solution was stirred at room temperature for 18 hours under hydrogen atmosphere (1 atm). After the Celite filtration, the obtained product was purified by silica gel column (hexane: ethyl acetate; 4:1—&gt;2:1) to obtain 441mg of the intended compound. <br><br> MS (ESI MH+) : 295 CHNO : C15H22N204 <br><br> 101 <br><br> Process 4 Synthesis of (2S)-2-tertiary butyloxycarbonylamino-3-[4-(2,4-dioxo-l,3-dihydroquinazoline-3-yl) phenyl] propionic acid methylester <br><br> 683mg of (2S)-2-tertiary butyloxycarbonylamino-3-(4-aminophenyl) 5 propionic acid methylester obtained in Process 3 was dissolved in 20ml of acetonitrile and 412mg of methyl 2-isocyanobenzoate was added and stirred at 70°C for 16.5 hours. After cooling down to room temperature, the produced powder was picked up by filtration and dried to obtain 588mg of the intended compound as white powder. <br><br> 10 MS(ESI MH+) : 440 <br><br> CHNO : C23H25N306 <br><br> Process 5 Synthesis of (2S)-2-tertiary butyloxycarbonylamino-3-[4-(l-methyl-2,4-dioxo-l,3-dihydroquinazoline-3-yl) phenyl] propionic acid methylester <br><br> 15 l.Og of (2S)-2-tertiary butyloxycarbonylamino-3-[4-(2,4-dioxo-1,3- <br><br> dihydroquinazoline-3-yl) phenyl] propionic acid methylester obtained in Process 4 was dissolved in 20ml of N,N-dimethylformamide and 378mg of potassium carbonate and 0.284ml of iodomethane were added and stirred for 1 hour. 70ml of ethyl acetate was further added to the reaction <br><br> 20 solvent and washed with water and saturated NaCl solution. After drying the ethyl acetate layer the solvent was concentrated under reduced pressure to obtain 1.04g of the intended compound as yellow powder. <br><br> MS (ESI MH+) : 454 <br><br> 25 CHNO : C24H27N306 <br><br> Process 6 Synthesis of (2S)-2-amino-3-[4-(l-methyl-2,4-dioxo-l,3- <br><br> 102 <br><br> dihydroquinazoline-3-yl)phenyl] propionic acid methylester hydrochloride 500mg of (2S)-2-tertiary butyloxycarbonylamino-3-[4-(l-methyl-2,4-dioxo-l,3-dihydroquinazoline-3-yl) phenyl] propionic acid methylester obtained in Process 5 was dissolved in 11ml of 4N hydrochloric acid-dioxan solution and stirred at room temperature for 1 hour. The reaction solvent was concentrated under reduced pressure to obtain 426mg of the intended compound as white powder. <br><br> MS (ESI MH+) : 354 CHNO: C19H19N304 HC1 <br><br> Example 161 Synthesis of the compound of the following general formula (77) which has substituents of Example 161 of Table 22 <br><br> The mixture of 88.2mg of 2-chloro-6-methyl benzoic acid, 99.1mg of l-(3-dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride, 79.1mg of 1-hydroxybenzotriazole • monohydrate, 107^1 of triethylamine, lOOmg of (2S)-2-amino-3-[4-(l-methyl-2,4-dioxo-l,3-dihidroquinazoline-3-yl)phenyl] propionic acid methylester hydrochloride and 1ml of dichloromethane was stirred at 45 °C overnight. The mixture was purified respectively by silica gel chromatography (hexane-ethyl acetate) and reverse phase HPLC to obtain the intended compound. <br><br> MS (ESI MH+) : 506 CHNO : C27H24N305C1 <br><br> Example 162 Synthesis of the compound of the following general formula (77) which has substituents of Example 162 of Table 22 <br><br> The mixture of 20mg of methylester compound obtained in Example <br><br> 103 <br><br> 161, 2mg of lithium hydroxide • monohydrate, 1ml of tetrahydrofuran and 0.2ml of water was stirred at room temperature for 1 hour. After 1M hydrochloric acid was added and the solution was neutralized, the solvent was evaporated. The intended compound (6.0mg) was obtained by 5 purifying with reverse phase HPLC. <br><br> MS (ESI MH+) : 492 CHNO : C26H22N305C1 <br><br> Examples 163, 166, 168, 170, 172, 174 and 176 10 Synthesis of the compound of the general formula (77) which has substituents of the corresponding Example of Table 22 <br><br> The intended compound was obtained in the same manner as that of Example 161 except that 2-chloro-6-methyl benzoic acid was replaced with a corresponding carboxylic acid in the synthesizing process of 15 Example 161. See Table 22. <br><br> Examples 164, 165, 167, 169, 171, 173 and 175 <br><br> Synthesis of the compound of the general formula (77) which has substituents of the corresponding Example of Table 22 20 The intended compound was obtained in the same manner as that of Example 162 except that a corresponding methylester compound was used. See Table 22. <br><br> Example 177 Synthesis of the compound of the general formula (77) 25 which has substituents of the corresponding Example of Table 22 <br><br> A methylester compound was obtained in the same manner as that <br><br> 104 <br><br> of Example 161 except that 2-chloro-6-methyl benzoic acid was replaced with a 2,6-dichlorocinnamic acid in the synthesizing process of Example 161. Then the intended compound was obtained in the same manner as that of Example 162 except that the above resulting methylester was used. See Table 22. <br><br> 1 <br><br> (77) <br><br> Table 22 <br><br> Example <br><br> Rl- <br><br> R2- <br><br> MS Found <br><br> 161 <br><br> 2-chloro-6-methylbenzoyl <br><br> Me <br><br> 506 <br><br> (MH+) <br><br> 162 <br><br> 2-chloro-6-methylbenzoyl <br><br> H <br><br> 492 <br><br> (MH+) <br><br> 163 <br><br> 2-chloro-6-trifluoromethylbenzoyl <br><br> Me <br><br> 560 <br><br> (MH+) <br><br> 164 <br><br> 2-chloro-6-trifluoromethylbenzoyl <br><br> H <br><br> 544 <br><br> (MH-) <br><br> 165 <br><br> 2-chloro-6-bromobenzoyl <br><br> H <br><br> 556 <br><br> (MH+) <br><br> 166 <br><br> 2-chloro-6-bromobenzoyl <br><br> Me <br><br> 570 <br><br> (MH+) <br><br> 167 <br><br> 2-chloro-6-fluorobenzoyl <br><br> H <br><br> 496 <br><br> (MH+) <br><br> 168 <br><br> 2-chloro-6-fluorobenzoyl <br><br> Me <br><br> 510 <br><br> (MH+) <br><br> 169 <br><br> 3,5-dichloroisonicotinoyl <br><br> H <br><br> 513 <br><br> (MH+) <br><br> 170 <br><br> 3,5-dichloroisonicotinoyl <br><br> Me <br><br> 527 <br><br> (MH+) <br><br> 105 <br><br> 172 <br><br> 171 <br><br> 2,6-dichloro-3-methylbenzoyl H 526 (MH+) 2,6-dichloro-3-methylbenzoyl Me 540 (MH+) <br><br> 173 <br><br> 2,4,6-trichlorobenzoyl <br><br> H 546 (MH+) <br><br> 174 <br><br> 2,4,6-trichlorobenzoyl <br><br> Me 560 (MH+) <br><br> 5 175 <br><br> 2,6-dichloro-3-nitrobenzoyl <br><br> H 557 (MH+) <br><br> 176 <br><br> 2,6-dichloro-3-nitrobenzoyl <br><br> Me 588 (M+NH4+) <br><br> 177 <br><br> 2,6-dichlorocinnamoyl <br><br> H 538 (MH+) <br><br> Example 178 Synthesis of the compound of the following general formula 10 (78) which has a substituent of Example 178 of Table 23 <br><br> The resin obtained in Process 1 of Example 104 was 2-nitrosulfonylated and methylated in accordance with Process 4 of Example 112. <br><br> The resin obtained in Process 1 was treated in accordance with Process 2 of Example 135 and 2-nitrosulfonyl group was removed. The intended compound was obtained in accordance with Process 7 of Example 1. <br><br> 20 MS(ESI MH+) : 541 <br><br> CHNO : C26H22C12N405 <br><br> Example 179 Synthesis of the compound of the following general formula (78) which has a substituent of Example 179 of Table 23 25 The intended compound was obtained in the same manner as that of Example 178 except that ethyl bromide was used in Process 1 of <br><br> Process 1 2-nitrosulfonylation, methylation <br><br> 15 Process 2 Removal of 2-nitrosulfonyl group <br><br> 106 <br><br> Example 178. <br><br> MS (ESI MH+) : 555 CHNO : C27H24C12N405 <br><br> Meanwhile, R in Table 23 is a substituent of the following general formula 5 (78). <br><br> I <br><br> Table 23 <br><br> R- MS Found (MH+) <br><br> methyl 541 <br><br> ethyl 555 <br><br> Examples 180 to 189 <br><br> The compounds in Table 24 below were synthesized in the same manners as those of Example 45 except that respective corresponding 15 substituted 2-nitrobenzoic acid was used in Process lof Example 45, and Process 6 and 7 of Example 1. Meanwhile, Rl, R2, R3 and R4 in Table 24 are substituents of the following general formula (79). <br><br> Example 178 10 179 <br><br> 107 <br><br> (79) <br><br> Table 24 <br><br> 10 <br><br> Example <br><br> Rl- <br><br> R2- <br><br> R3- <br><br> R4- <br><br> MS Foui <br><br> 180 <br><br> methoxy H <br><br> H <br><br> H <br><br> 542 <br><br> 181 <br><br> H <br><br> H <br><br> H <br><br> methyl <br><br> 526 <br><br> 182 <br><br> chloro <br><br> H <br><br> H <br><br> H <br><br> 546 <br><br> 183 <br><br> H <br><br> H <br><br> chloro <br><br> H <br><br> 546 <br><br> 184 <br><br> H <br><br> H <br><br> methoxy <br><br> H <br><br> 542 <br><br> 185 <br><br> H <br><br> trifluoromethyl H <br><br> H <br><br> 580 <br><br> 186 <br><br> methyl <br><br> H <br><br> H <br><br> H <br><br> 526 <br><br> 187 <br><br> H <br><br> H <br><br> H <br><br> chloro <br><br> 546 <br><br> 188 <br><br> H <br><br> methoxy methoxy <br><br> H <br><br> 572 <br><br> 189 <br><br> H <br><br> H <br><br> fluoro <br><br> H <br><br> 530 <br><br> NMR data of the compound of Example 180: ^-NMRCCDCIS) 8 =3.22-15 3.48 (2H, m), 3.83 (3H, s), 3.93 (3H, s), 5.16-5.23 (IH, m), 7.16 (2H, d, J=7.8 Hz), 7.19-7.34 (6H, m), 7.44 (2H, d, J=8.7 Hz), 7.84 (IH, dd, J=2.4, <br><br> 108 <br><br> 6.6 Hz) <br><br> Example 190 Synthesis of the compound of the following general formula (80) which has substituents of Example 190 of Table 25 5 The compound (3.2mg) of the general formula (23) that has a substituent of Example 1 in Table 1 was suspended in a mixed solution of methanol (73fil) and toluene (224^1) and a hexane solution of 2M trimethylsilyldiazomethane (73fil) was added thereto. After 30 minutes, the reaction solvent was concentrated under reduced pressure to obtain 10 3mg of the intended compound. <br><br> MS (ESI MH+) : 526 CHNO : C26H21C12N305 <br><br> Example 191 Synthesis of the compound of the following general formula 15 (80) which has substituents of Example 191 of Table 25 <br><br> The compound (72.7mg) of the general formula (79) that has a substituent of Example 183 in Table 24 was dissolved in a mixed solution of dichloromethane (10ml) and isopropanol (0.2ml). l-(3- <br><br> dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride (26mg) and 4-20 dimethylaminopyridine (26.2mg) were added and stirred. After stirring it for 18 hours, IN hydrochloric acid was added and the solution was extracted with ethyl acetate. The water layer was further extracted with ethyl acetate and mixed with the previously extracted layer, and washed with saturated solution of sodium hydrogencarbonate and 25 saturated NaCl aqueous solution. Then, the organic layer was dried with anhydrous sodium sulphate and concentrated under reduced <br><br> 109 <br><br> pressure. The obtained product was purified by high pressure liquid chromatography (water • acetonitrile) to obtain lOmg of the intended compound. <br><br> MS (ESI MH+) : 588 5 CHNO : C28H24C13N305 <br><br> Example 192 Synthesis of the compound of the following general formula (80) which has substituents of Example 192 of Table 25 <br><br> The compound (12mg) of the general formula (37) that has a 10 substituent of Example 111 in Table 16 was dissolved in methanol (0.5ml), cooled down to -78°C and thionyl chloride (0.04ml) was added. After stirring it at room temperature for 7.5 hours, the reaction solvent was concentrated under reduced pressure to obtain 12mg of the intended compound. <br><br> 15 MS(ESI MH+) : 597 <br><br> CHNO : C30H30C12N405 <br><br> Examples 193 to 202 <br><br> The compounds shown below were synthesized by using a 20 carboxylic acid described in respective corresponding Example as a starting material. In this connection, Examples 193 to 195 and 201 were synthesized in the same manner as that of Example 191 except that a suitable alcohol was used. Example 196 to 200 and 202 were synthesized in the same manner as that of Example 192. Meanwhile, Rl, R2 and R3 25 in Table 25 are substituents of the following general formula (80). <br><br> 110 <br><br> 10 <br><br> 15 <br><br> ^ CI <br><br> (8 0) <br><br> Table 25 <br><br> Example Rl- <br><br> R2- <br><br> R3- <br><br> 190 <br><br> H <br><br> m ethyl <br><br> H <br><br> 191 <br><br> chloro isopropyl <br><br> H <br><br> 192 <br><br> diethylamino methyl <br><br> H <br><br> 193 <br><br> H <br><br> ethyl <br><br> H <br><br> 194 <br><br> H <br><br> isopropyl <br><br> H <br><br> 195 <br><br> methoxy ethyl <br><br> H <br><br> 196 <br><br> dimethylamino methyl <br><br> H <br><br> 197 <br><br> ethylamino methyl <br><br> H <br><br> 198 <br><br> methylamino methyl <br><br> H <br><br> 199 <br><br> ethylmethylamino methyl <br><br> H <br><br> 200 <br><br> amino methyl <br><br> H <br><br> 201 <br><br> chloro ethyl <br><br> H <br><br> 202 <br><br> H <br><br> methyl fluoro <br><br> MS Found (MH+) 526 588 597 <br><br> 540 <br><br> 554 570 569 569 <br><br> 555 583 <br><br> 541 574 544 <br><br> 111 <br><br> NMR data of the compound of Example 196: 'H-NMR (400 MHz, DMSO-d6) 6 2.94 (3H, m), 3.02 (IH, m), 3.22 (IH, m), 3.58 (3H, s), 3.70 (3H, s), 4.82 (IH, m), 7.18-7.47 (10H, m), 9.28 (IH, d). 13C-NMR (100 MHz, DMSO-d6) 5 30.88, 36.37, 40.75, 52.28, 53.66, 109.17, 116.00, 116.22, 121.35, 128.32, 128.99, 129.88, 131.36, 131.79, 5 132.07, 135.35, 136.35, 137.21, 146.74, 150.37, 161.89, 163.99, 171.72. <br><br> Example 203 <br><br> Synthesis of the compound of the following- general formula (81) Process 1 Acylation 10 The resin obtained in Process 4 of Example 1 was acylated by using cis-2-[(9-fluorenylmethyloxycarbonyl)amino]-1 -cyclohexan carboxylic acid (274mg), DIC (0.058ml), HOAt (lOlmg) and NMP (2.5ml). <br><br> Process 2 Removal of 9- fluorenylmethyloxycarbonyl group <br><br> The resin obtained in Process 1 was stirred in 20% piperidine-NMP 15 solution for ten minutes twice and washed with NMP, methanol and dichloromethane four times each. <br><br> Process 3 Cyclization, Cleavage from resin <br><br> The resin obtained in Process 2 was treated in the same way as that of Process 2 of Example 96 and then treated in accordance with 20 Process 7 of Example 1 to obtain the intended compound. <br><br> MS (ESI MH+) : 504 CHNO : C24H23C12N305 <br><br> 112 <br><br> H <br><br> (cis) <br><br> Examples 205 and 206 <br><br> The compounds of the following general formula (82) that has a substituent in Table 26 were synthesized by using a carboxylic acid 5 obtained in Example 108 as a starting material and in the same manner as that of Example 191 except that a suitable alcohol was used. Meanwhile, R in Table 26 is a substituent of the following general formula <br><br> (82). <br><br> • 10 <br><br> 113 <br><br> Table 26 <br><br> Example R- <br><br> MS Found (MH+) <br><br> 206 <br><br> 205 <br><br> ethyl isopropyl <br><br> 597 <br><br> 583 <br><br> Examples 207 and 208 <br><br> The compounds of the following general formula (83) that has substituents in Table 27 were synthesized in the same manner as that of Example 149 except that respective corresponding substituted 2-nitrobenzylbromide was used. Meanwhile, Rl and R2 in Table 27 are substituents of the following general formula (83). <br><br> Table 27 <br><br> Example Rl- <br><br> R2- <br><br> MS Found (MH+) 512 <br><br> 207 <br><br> -H <br><br> methyl <br><br> 208 <br><br> fluoro <br><br> -H <br><br> 516 <br><br> 114 <br><br> Example 209 <br><br> The compound of the following general formula (84) that has a substituent of Example 209 in Table 28 was synthesized in the same manners as those of Example 45 except that 3-chloro-2-nitrobenzoic acid was replaced with l-ethyl-4-nitro-li7-pyrazole-3-carboxylic acid in Process lof Example 45, and Process 6 and 7 of Example 1. Meanwhile, R in Table 28 is a substituent of the following general formula (84). <br><br> Example 210 <br><br> The compound of the following general formula (84) that has a substituent of Example 210 in Table 28 was synthesized by using the compound obtained in Example 209 as a starting material and in the same manner as that of Example 192. Meanwhile, R in Table 28 is a substituent of the following general formula (84). <br><br> Table 28 <br><br> Example R- <br><br> MS Found (MH+) <br><br> 209 <br><br> H <br><br> 530 <br><br> 115 <br><br> 210 <br><br> methyl <br><br> 544 <br><br> Example 211 <br><br> The compound of the following general formula (85) was synthesized as follows. The compound of the general formula (23) that has a substituent(s) of Example 1 in Table 1 (28.9mg) was dissolved in DMF (1ml) and l-(3-dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride (12.9mg), l-hydroxy-7-azabenzotriazole (10.7mg), hydroxylamine hydrochloride (11.5mg) and N-methylmorpholine (9.1mg) were added and stirred. Further, l-(3-dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride (11.7mg), l-hydroxy-7-azabenzotriazole (8.2mg), hydroxylamine hydrochloride (9.5mg), N-methylmorpholine (10.5mg) and DMF (0.5ml) were added and stirred. Two hours later, water was added to the reaction solvent and the separated crystal was dried to 14.8mg of the intended compound. <br><br> MS (ESI MH-) : 525 CHNO : C25H20C12N405 <br><br> Example 212 Synthesis of the compound of the following general formula (86) which has a substituent of Example 212 of Table 29 <br><br> 116 <br><br> Process 1 Synthesis of (2S)-2-(t-butoxycarbonylamino)-3-[4-(l-methyluracil-3-yl)phenyl] propionic acid methylester <br><br> The mixture of 30mg of (2S)-2-(t-butoxycarbonylamino)-3-[4-(dihydroxy boranyl)phenyl] propionic acid, 25mg of l-methyluracil, 27mg 5 of copper acetate(II), 40mg of triethylamine and 4ml of dichloromethane were stirred overnight. The reaction solvent was diluted by ethanol and filtered by Celite filtration. The residual material obtained by concentrating the filtrate was dilluted by IN sodium hydrate and washed with ethyl acetate. After making the water layer acidic by hydrochloric 10 acid, the solution was extracted with ethyl acetate, washed with saturated NaCl aqueous solution, dried with magnesium sulfate and the solvent was removed to obtain a crude material of (2S)-2-(t-butoxycarbonylamino)-3-[4-(l-methyluracil-3-yl)phenyl] propionic acid. This crude material was diluted by 5ml of ethanol and hexane solution 15 including 2M trimethylsilyldiazometliane was added to give methyl ester. The reaction solvent was concentrated and purified by silica gel chromatography (ethyl acetate-ethanol) to obtain the title compound (7mg). <br><br> MS (ESI MH+) : 4 0 4 20 'H-NMR (DMSO-d6) 8 1.45 (9H, s), 3.15 (2H, d), 3.40 (3H, s), 3.70 (3H, s), 4.60 (IH, m), 5.00 (IH, m), 5.85 (IH, d), 7.15 (2H, d), 7.20 (IH, d), 7.30 (2H, d) <br><br> Process 2 Synthesis of (2S)-2-(2,6-dichlorobenzoylamino)-3-[4-(l-methyluracil-3-yl)phenyl] propionic acid methylester 25 6ml of dioxan solution including 4N hydrogen chloride was added to 86mg of (2S)-2-(t-butoxycarbonylamino)-3-[4-(l-methyluracil-3- <br><br> 117 <br><br> yl)phenyl] propionic acid methylester and stirred for 1 hour. 10ml of dimethylform amide, 62 jj.1 of triethylamine and 34^1 of 2,6-dichloromenzoyl chloride were added to the residual material obtained by removing the solvent and stirred for 30 minutes. The reaction solvent 5 was diluted by ethyl acetate, washed with IN hydrochloric acid, an aqueous solution of saturated sodium hydrogen carbonate and saturated NaCl aqueous solution, and dried with magnesium sulfate and the solvent was removed to obtain a crude material of the title compound. The crude material was purified by reverse phase HPLC to obtain the title 10 compound (26mg). <br><br> MS (ESI MH+) : 4 7 6 <br><br> H-NMR (CDC13) 6 3.30 (2H, br), 3.40 (3H, s), 3.75 (3H, s), 5.25 (1 H, q), 5.85 (IH, d), 6.40 (IH, d) 7.15 (2H, d), 7.20-7.40 (6H, m) <br><br> 15 Example 213 Synthesis of the compound of the following general formula (86) which has a substituent of Example 213 of Table 29 <br><br> The mixture of lOmg of (2S)-2-(2,6-dichlorobenzoylamino)-3-[4-(l-methyluracil-3-yl)phenyl] propionic acid methylester, 3ml of dioxan solution including 4N hydrogen chloride and 3ml of water were stirred at 20 80°C for 4 hours. After the solvent was removed, the crude material was purified by reverse phase HPLC to obtain the said compound (3mg). <br><br> MS (ESI MH+) : 4 6 2 <br><br> 118 <br><br> Table 29 <br><br> Example R- MS Found (MH+) <br><br> 212 methyl 476 <br><br> 5 213 -H 462 <br><br> Referencial Example 1 2-chloro-6-trifuluoromethylbenzoic acid <br><br> The mixture of 500mg of 3-chlorobenzotrifuluoride and 3ml of tetrahydrofuran was cooled down to -50 °C and 2ml of 1.6M n-10 butyllithium hexan solution was added and stirred for 1 hour. The mixture was put into dry ice and diluted by an aqueous solution of IN sodium hydroxide. After washing it with toluene, the water layer was made acidic by hydrochloric acid and extracted with ethyl acetate. The crude material obtained by removing the solvent was purified by reverse 15 phase HPLC to the said compound. <br><br> Yield 244mg <br><br> H-NMR (DMSO-d6) 6 7.68 (IH, t), 7.80 (IH, d), 7.88 (IH, d). <br><br> MS (ESI, m/z) 223 (M-H)- <br><br> 20 <br><br> 119 <br><br> Referential Example 2 2-bromo-6-chlorobenzoic acid The mixture of 500mg of 3-bromochlorobenzen and 3ml of tetrahydrofuran was cooled down to -78 °C and 1.3ml of 2.0M lithiumdiisopropylamide heptane/tetrahydrofuran/ethylbenzene was 5 added. After stirring it for 2 hours, the mixture was put into dry ice and washed and extracted as described in Referencial Example 1 to obtain a crude material. The crude material was washed with a mixed solvent of hexane-ethyl acetate to obtain the said compound. <br><br> Yield 317mg <br><br> 10 H-NMR (DMSO-d6) 6 7.40 (IH, t), 7.60 (IH, d), 7.70 (IH, d). <br><br> MS (ESI, m/z) 233 (M-H)- <br><br> Example 214 VCAM antagonist activity (VCAM-1/a 4 £ 1 binding assay) The capacity of a test substance antagonistic to the binding of cell 15 strain Jurkat (ATCC TIB-152) of human T cells, known to express integrin a 4)3 1, to VCAM-1 was determined. <br><br> 100 ii 1/well of a solution (500 ng/ml) of recombinant human VCAM-1 (R&amp;D systems) solution diluted with buffer A (0.1 M NaHC03, pH 9.6) was added to a micro titer plate having 96 wells (Nunc Maxisorp). 20 After the incubation at 4°C overnight, unbound VCAM-1 was removed by washing once with PBS. After completion of the washing, a buffer (buffer B) obtained by diluting Block Ace (Dainippon Pharmaceutical Co., Ltd.) with PBS to 1/4 concentration was added in an amount of 150 // 1/well. After the incubation at room temperature for 1 hour, buffer B was 25 removed and the plate was washed with PBS once. <br><br> Jurkat cells were washed with Dulbecco modified Eagle medium <br><br> 120 <br><br> (SIGMA, hereinafter referred to as "DMEM") twice and then incubated in DMEM containing 10 11 g/ml of Calcein-AM (Wako Pure Chemical Industries, Ltd.) at 37°C in dark place for 30 minutes to label with fluorescence. The cells were again suspended in a binding buffer (20 mM 5 HEPES, DMEM containing 0.1 % BSA). <br><br> 50 ii 1 of a test substance of various concentrations obtained by the dilution with the binding buffer was added to the plate. Immediately thereafter, 50 ii 1 (final volume: 100 //1 /well) of the fluorescent Jurkat cells (4 x 106 cells/ml) were added thereto, and they were incubated in 10 dark place at room temperature for 30 minutes. After the shaking on a plate shaker (IKA MTS-4) at 800 rpm for 30 seconds, the solution was immediately removed to remove the unbound cells. The fluorescence quantity of the bound cells remaining in the wells was determined with a fluorescent plate reader (Wallac 1420 ARVO multi-label counter) (filter 15 excitation wave length: 485 nm, emission wave length: 535 nm). The fluorescent strength thus obtained is proportional to the number of Jurkat cells bound to VCAM-1 and remaining on the plate. The binding rate of each test material in various concentrations was determined while the fluorescent strength of the test material-free well was determined to 20 be 100 %. The concentration IC50 for the 50 % binding inhibition was calculated. <br><br> The obtained test results are shown in Table 30 <br><br> Example 215 VCAM antagonistic activity (VCAM-1/ a 4 j3 7 binding 25 assay) <br><br> The capacity of a test substance antagonistic to the binding of <br><br> 121 <br><br> lymphoma cell strain RPMI-8866 of human B cells, known to express integrin a 4 £ 7, to VCAM-1 was determined. <br><br> 100 /i 1/well of a solution (500 ng/ml) of recombinant human VCAM-1 (R &amp; D systems) solution diluted with buffer A (0.1 M NaHC03, 5 pH 9.6) was added to a micro titer plate having 96 wells (Nunc Maxisorp). After the incubation at 4°C overnight, unbound VCAM-1 was removed by washing once with PBS. After completion of the washing, a buffer (buffer B) obtained by diluting Block Ace (Dainippon Pharmaceutical Co., Ltd.) with PBS to 1/4 concentration was added in an amount of 150 // 10 1/well. After the incubation at room temperature for 1 hour, buffer B was removed and the plate was washed with PBS once. <br><br> RPMI-8866 cells were washed with DMEM twice and incubated in Dulbecco modified Eagle medium containing 10 // g/ml of Calcein-AM (Wako Pure Chemical Industries, Ltd.) (SIGMA, hereinafter referred to as 15 "DMEM") in dark place at 37°C for 30 minutes to label with fluorescence. The cells were again suspended in a binding buffer (20 mM HEPES, DMEM containing 0.1 % BSA) containing 4 mM of MnCl2. <br><br> 50 m 1 of a test substance of various concentrations obtained by the dilution with the binding buffer was added to the plate. Immediately 20 thereafter, 50 //1 (final volume: 100 /j. 1 /well) of the fluorescent RPMI-8866 cells (4 x 106 cells/ml) were added thereto, and they were incubated in dark place at room temperature for 30 minutes. After the shaking on a plate shaker (IKA MTS-4) at 800 rpm for 30 seconds, the solution was immediately removed to remove the unbound cells. The fluorescence 25 quantity of the bound cells remaining in the wells was determined with a fluorescent plate reader (Wallac 1420 ARVO multi-label counter) (filter <br><br> 122 <br><br> excitation wave length: 485 nm, emission wave length: 535 nm). The fluorescent strength thus obtained is proportional to the number of RPMI-8866 cells bound to VCAM-1 and remaining on the plate. The binding rate of each test material in various concentrations was determined while the fluorescent strength of the test material-free well was determined to be 100 %. The concentration IC50 for the 50 % binding inhibition was calculated. <br><br> The obtained test results are shown in Table 30. <br><br> Table 30 <br><br> Results of the determination of VCAM antagonistic activity (IC50,nmol/L) Example a4/8 7 a 4/8 1 <br><br> 1 <br><br> 1.0 <br><br> 18 <br><br> 2 <br><br> 9.2 <br><br> 240 <br><br> 3 <br><br> 3.5 <br><br> 66 <br><br> 4 <br><br> 2.8 <br><br> 26 <br><br> 5 <br><br> 14.0 <br><br> 46 <br><br> 6 <br><br> 3.3 <br><br> 80 <br><br> 7 <br><br> 22.0 <br><br> 110 <br><br> 8 <br><br> 3.9 <br><br> 94 <br><br> 9 <br><br> 94.0 <br><br> 440 <br><br> 11 <br><br> 74.0 <br><br> 6200 <br><br> 12 <br><br> 19.0 <br><br> 490 <br><br> 13 <br><br> 4.5 <br><br> 220 <br><br> 14 <br><br> 26.0 <br><br> 1260 <br><br> 16 <br><br> 14.0 <br><br> 1700 <br><br> 17 <br><br> 43.0 <br><br> 2100 <br><br> 123 <br><br> 18 <br><br> 23 <br><br> 31 <br><br> 32 <br><br> 34 <br><br> 35 <br><br> 36 <br><br> 37 <br><br> 41 <br><br> 42 <br><br> 44 <br><br> 45 <br><br> 46 <br><br> 47 <br><br> 48 <br><br> 49 <br><br> 50 <br><br> 51 <br><br> 52 <br><br> 53 <br><br> 54 <br><br> 57 <br><br> 58 <br><br> 59 <br><br> 60 <br><br> 61 <br><br> 62 <br><br> 23.0 <br><br> 1900 <br><br> 18.0 <br><br> 7240 <br><br> 50.0 <br><br> 630 <br><br> 64.0 <br><br> 2420 <br><br> 42.0 <br><br> 2210 <br><br> 68.0 <br><br> 1700 <br><br> 6.6 <br><br> 490 <br><br> 19.0 <br><br> 200 <br><br> 86.0 <br><br> 3410 <br><br> 92.0 <br><br> 6730 <br><br> 79.0 <br><br> 4230 <br><br> 10.2 <br><br> 340 <br><br> 6.8 <br><br> 195 <br><br> 76.0 <br><br> 1980 <br><br> 28.0 <br><br> 1800 <br><br> 62.1 <br><br> 1180 <br><br> 7.9 <br><br> 1770 <br><br> 30.0 <br><br> 1180 <br><br> 55.3 <br><br> 1310 <br><br> 66.1 <br><br> 2460 <br><br> 9.8 <br><br> 71 <br><br> 29.9 <br><br> 639 <br><br> 31.6 <br><br> 1070 <br><br> 35.8 <br><br> 540 <br><br> 36.1 <br><br> 780 <br><br> 42.0 <br><br> 1150 <br><br> 45.0 <br><br> 1450 <br><br> 124 <br><br> 63 <br><br> 1.3 <br><br> 28 <br><br> 65 <br><br> 7.0 <br><br> 330 <br><br> 66 <br><br> 1.3 <br><br> 170 <br><br> 67 <br><br> 2.2 <br><br> 370 <br><br> 68 <br><br> 1.5 <br><br> 350 <br><br> 69 <br><br> 2.5 <br><br> 5630 <br><br> 70 <br><br> 3.5 <br><br> 34 <br><br> 71 <br><br> 11.0 <br><br> 185 <br><br> 72 <br><br> 2.6 <br><br> 27 <br><br> 73 <br><br> 1.6 <br><br> 27 <br><br> 74 <br><br> 2.5 <br><br> 53 <br><br> 75 <br><br> 2.3 <br><br> 60 <br><br> 76 <br><br> 13.0 <br><br> 192 <br><br> 78 <br><br> 9.6 <br><br> 180 <br><br> 79 <br><br> 18.0 <br><br> 440 <br><br> 80 <br><br> 74.0 <br><br> 960 <br><br> 81 <br><br> 8.6 <br><br> 72 <br><br> 84 <br><br> 20.0 <br><br> 158 <br><br> 85 <br><br> 25.0 <br><br> 230 <br><br> 89 <br><br> 2.7 <br><br> 41 <br><br> 90 <br><br> 43.7 <br><br> 511 <br><br> 91 <br><br> 1.6 <br><br> 1200 <br><br> 92 <br><br> 5.7 <br><br> 1340 <br><br> 93 <br><br> 4.8 <br><br> 4030 <br><br> 94 <br><br> 6.0 <br><br> 1150 <br><br> 95 <br><br> 1.8 <br><br> 960 <br><br> 97 <br><br> 13.0 <br><br> 1500 <br><br> 99 <br><br> 100 <br><br> 104 <br><br> 105 <br><br> 106 <br><br> 107 <br><br> 108 <br><br> 109 <br><br> 110 <br><br> 111 <br><br> 112 <br><br> 113 <br><br> 114 <br><br> 115 <br><br> 116 <br><br> 117 <br><br> 118 <br><br> 119 <br><br> 120 <br><br> 121 <br><br> 122 <br><br> 123 <br><br> 124 <br><br> 126 <br><br> 129 <br><br> 131 <br><br> 135 <br><br> 2.0 <br><br> 12 <br><br> 2.4 <br><br> 11 <br><br> 1.4 <br><br> 16 <br><br> 0.8 <br><br> 14 <br><br> 2.8 <br><br> 44 <br><br> 1.1 <br><br> 17 <br><br> 3.3 <br><br> 57 <br><br> 4.3 <br><br> 56 <br><br> 4.1 <br><br> 55 <br><br> 11.0 <br><br> 88 <br><br> 1.1 <br><br> 37 <br><br> 1.6 <br><br> 52 <br><br> 27.0 <br><br> 190 <br><br> 36.0 <br><br> 760 <br><br> 35.0 <br><br> 450 <br><br> 19.0 <br><br> 480 <br><br> 16.0 <br><br> 385 <br><br> 21.0 <br><br> 440 <br><br> 24.0 <br><br> 500 <br><br> 14.0 <br><br> 109 <br><br> 0.6 <br><br> 310 <br><br> 12.0 <br><br> 180 <br><br> 20.0 <br><br> 840 <br><br> 70.0 <br><br> 1580 <br><br> 76.4 <br><br> 2023 <br><br> 24.0 <br><br> 183 <br><br> 12.0 <br><br> 570 <br><br> 126 <br><br> 136 <br><br> 3.0 <br><br> 565 <br><br> 137 <br><br> 11.2 <br><br> 2120 <br><br> 139 <br><br> 17.0 <br><br> 107 <br><br> 142 <br><br> 9.0 <br><br> 210 <br><br> 147 <br><br> 6.5 <br><br> 107 <br><br> 162 <br><br> 0.2 <br><br> 34 <br><br> 164 <br><br> 7.1 <br><br> 120 <br><br> 165 <br><br> 0.6 <br><br> 11 <br><br> 169 <br><br> 0.5 <br><br> 6 <br><br> 180 <br><br> 5.4 <br><br> 86 <br><br> 181 <br><br> 1.0 <br><br> 15 <br><br> 182 <br><br> 6.2 <br><br> 113 <br><br> 183 <br><br> 1.7 <br><br> 25 <br><br> 184 <br><br> 3.3 <br><br> 31 <br><br> 185 <br><br> 2.7 <br><br> 12 <br><br> 186 <br><br> 4.3 <br><br> 59 <br><br> 187 <br><br> 3.2 <br><br> 26 <br><br> 188 <br><br> 2.7 <br><br> 11 <br><br> 189 <br><br> 1.1 <br><br> 18 <br><br> 211 <br><br> 20 <br><br> 250 <br><br> It is thus apparent that the new phenylalanine derivatives exhibited an excellent a 4-integrin inhibiting activity. <br><br> Since the new phenylalanine derivatives of the present invention have excellent a 4-integrin inhibiting activity, the present invention provides a therapeutic agent or preventive agent for diseases in which a 4 integrin-depending adhesion process participates in the pathology, such <br><br> 127 <br><br></p> </div>

Claims (26)

<div class="application article clearfix printTableText" id="claims"> <p lang="en"> as inflammatory diseases, rheumatoid arthritis, inflammatory bowel diseases, systemic lupus erythematosus, multiple sclerosis, Sjogren's syndrome, asthma, psoriasis, allergy, diabetes, cardiovascular diseases, arterial sclerosis, restenosis, tumor proliferation, tumor metastasis and transplantation rejection. The above-described inflammatory bowel diseases include Crohn's disease and ulcerative colitis.<br><br> In this purpose, the compound of the present invention has high bioavailability and/or blood level when administered orally. Therefore, an oral administration of a drug is effective.<br><br> The compound of the present invention also has high stability in acidic or alkaline solution and is effective, for example, as it is possible to apply to various dosage forms.<br><br> 128<br><br> What is claimed is<br><br>
1. Phenylalanine derivatives of the following general formula (1) and pharmaceutically acceptable salts thereof:<br><br> (D<br><br> 5 wherein A represents one of the following general formulae (2), (3), (3-1) or (3-2):<br><br> wherein Arm represents a cyclic alkyl group or an aromatic ring containing 0, 1, 2, 3 or 4 hetero atoms selected from the group consisting of oxygen, sulfur and nitrogen atoms,<br><br> 10 the composite line of solid line and dotted line in the formula (3-2) represents a single bond or a double bond,<br><br> U, V and X represent C(=0), S(=0)2f C(-R5)(-R6), C(=C(R5)(R6», C(=S),<br><br> 129<br><br> S(=0), P(=0)(-0H) or P(-H)(=0),<br><br> W represents C(-R7) or a nitrogen atom,<br><br> Rl, R2, R3, R4 R5, R6and R7 may be the same or different from one another and each represent a hydrogen atom, a halogen atom, a hydroxyl 5 group, a lower alkyl group, a substituted lower alkyl group, a lower alkenyl group, a substituted lower alkenyl group, a lower alkynyl group, a substituted lower alkynyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, an aryl group, a heteroaryl group, a lower alkyl group substituted with a cycloalkyl group(s) which may 10 contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with an aryl group(s), a lower alkyl group substituted with a heteroaryl group(s), a lower alkoxyl group, a lower alkylthio group, a lower alkoxyl group and lower alkylthio group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, 15 a lower alkoxyl group and lower alkylthio group substituted with an aryl group(s), a lower alkoxyl group and lower alkylthio group substituted with a heteroaryl group(s), a cycloalkyloxy group which may contain a hetero atom(s) in the ring thereof, an aryloxy group, a heteroaryloxy group, a lower hydroxy alkyl group, a lower hydroxy alkenyl group, a lower 20 hydroxy alkoxyl group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a lower halogenoalkenyl group, nitro group, cyano group, a substituted or unsubstituted amino group, carboxyl group, a lower alkyloxycarbonyl group, a substituted or unsubstituted carbamoyl group, a lower alkanoyl 25 group, an aroyl group, a lower alkylsulfonyl group, a substituted or unsubstituted sulfamoyl group or an ammonium group, R5 and R6 may be<br><br> 130<br><br> bonded together to form a ring which may contain one or two oxygen, nitrogen or sulfur atoms,<br><br> B represents hydroxyl group, a lower alkoxyl group or hydroxylamino group,<br><br> 5 C represents a hydrogen atom, a lower alkyl group, a lower alkenyl group, a lower alkynyl group, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with an aryl group(s) or a lower alkyl group substituted with a heteroaryl group(s),<br><br> 10 D represents a lower alkyl group, a lower alkenyl group, a lower alkynyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, an aryl group, a heteroaryl group, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with an aryl group(s), a lower 15 alkyl group substituted with a heteroaryl group(s), a lower alkoxyl group, a lower alkoxyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group substituted with an aryl group(s), a lower alkoxyl group substituted with a heteroaryl group(s), a cycloalkyloxy group which may contain a hetero 20 atom(s) in the ring thereof, an aryloxy group, a heteroaryloxy group, a lower hydroxy alkyl group, a lower hydroxyalkenyl group, a lower hydroxy alkoxyl group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkenyl group, nitro group, cyano group, a substituted or unsubstituted amino group, carboxyl group, a 25 lower alkyloxycarbonyl group, a substituted or unsubstituted carbamoyl group, a lower alkanoyl group, an aroyl group, a lower alkylthio group, a<br><br> 131<br><br> lower alkylsulfonyl group or a substituted or unsubstituted sulfamoyl group,<br><br> C and D may be bonded together to form a ring which may contain one or two oxygen, nitrogen or sulfur atoms,<br><br> T represents an interatomic bond, C(=0), C(=S), S(=0), S(=0)2, N(H)-C(=0), or N(H)-C(=S),<br><br> J and J' may be the same or different from each other and each represent a hydrogen atom, a halogen atom, a lower alkyl group, a lower alkyloxy group or a nitro group,<br><br> provided that the phenylalanine derivatives of the general formula (1) do not include compounds having the following formula (A-1) or (A-2) when A represents the formula (3-2).<br><br> (A-1) (A-2)<br><br>
2. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 1, wherein A represents one of the groups indicated as the general formula (2) or (3) and Rl, R2, R3, R4, R5, R6 and R7 may be the same or different from one another, and each represents a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a substituted lower alkyl group, a lower alkenyl group, a substituted lower alkenyl group, a lower alkynyl group, a substituted lower alkynyl group, a<br><br> 132<br><br> cycloalkyl group which may contain a hetero atom(s) in the ring thereof, an aryl group, a heteroaryl group, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with an aryl group(s), a lower alkyl group substituted with a heteroaryl group(s), a lower alkoxyl group, a lower alkylthio group, a lower alkoxyl group and lower alkylthio group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group and lower alkylthio group substituted with an aryl group(s), a lower alkoxyl group and lower alkylthio group substituted with a heteroaryl group(s), a cycloalkyloxy group which may contain a hetero atom(s) in the ring thereof, an aryloxy group, a heteroaryloxy group, a lower hydroxy alkyl group, a lower hydroxy alkenyl group, a lower hydroxyalkoxyl group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a lower halogenoalkenyl group, nitro group, cyano group, a substituted or unsubstituted amino group, carboxyl group, a lower alkyloxycarbonyl group, a substituted or unsubstituted carbamoyl group, a lower alkanoyl group, an aroyl group, a lower alkylsulfonyl group or a substituted or unsubstituted sulfamoyl group, R5 and R6 may be bonded together to form a ring which may contain one or two oxygen, nitrogen or sulfur atoms.<br><br>
3. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 2, wherein, in the general formula (1), B represents a hydroxyl group or a lower alkoxyl group,<br><br> C represents a hydrogen atom or a lower alkyl group,<br><br> J and J' represent a hydrogen group, and<br><br> 133<br><br> in the general formulae (2) and (3),<br><br> V and X represent any of group of C=(0), S(=0)2 or C(-R5)(-R6),<br><br> U represents any of group of C=(0), S(=0)2, C(-R5)(-R6), C(=C(R5)(R6)), C(=S), S(=0), P(=0)(-0H) and P(-H)(=0).<br><br> 5
4. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 2, wherein, in the general formula (1), B represents a hydroxyl group or a lower alkoxyl group,<br><br> C represents a hydrogen atom or a lower alkyl group,<br><br> J and J' represent a hydrogen group, and 10 in the general formulae (2) and (3), Arm represents a benzene ring or an aromatic ring containing 1, 2, 3 or 4 hetero atoms selected from the group consisting of oxygen, sulfur and nitrogen atoms.<br><br>
5. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 2, wherein, in the general formula (1), B<br><br> 15 represents a hydroxyl group or a lower alkoxyl group,<br><br> C represents a hydrogen atom or a lower alkyl group,<br><br> J and J' represent a hydrogen group, and in the general formulae (2) and (3), Arm represents a benzene ring or an aromatic ring containing 1, 2, 3 or 4 hetero atoms selected from the group 20 consisting of oxygen, sulfur and nitrogen atoms,<br><br> V and X represent any of group of C=(0), S(=0)2 or C(-R5)(-R6),<br><br> U represents any of group of C=(0), S(=0)2, C(-R5)(-R6), C(=C(R5)(R6)), C(=S), S(=0), P(=0)(-0H) and P(-H)(=0).<br><br>
6. The phenylalanine derivatives or pharmaceutically acceptable 25 salts thereof according to claim 1, wherein A represents the following formula (3-3):<br><br> 134<br><br> (3-3)<br><br> wherein Arm, U and Rl to R4 are the same as those described in claim 1.<br><br>
7. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 1, wherein A represents the following formulae (3-4) or (3-5):<br><br> R2<br><br> r1'~n'^V'R3 tAr^o<br><br> (3-4) (3-5)<br><br> wherein Arm and Rl to R4 are the same as those described in claim 1, and the composite line of solid line and dotted line in the formula (3-5) represents a single bond or a double bond.<br><br>
8. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 7, wherein A represents the formula (3-4), Arm is a benzene ring, pyridine ring, pyrazole ring or cyclohexane ring,<br><br> 135<br><br> Rl is a lower alkyl group, R2, R3 and R4 may be the same or different from one another and each represent a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, a lower alkyl group 5 substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group, a lower alkylthio group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a nitro group, a cyano group, an amino group, an amino group substituted with a lower alkyl group (s) or a 10 trialkylammonium group.<br><br>
9. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 1,wherein, in the general formula (1), D represents the following formulae (4-1), (4-2), (4-3) or (4-4):<br><br> 15<br><br> (4-4)<br><br> wherein R13 represents a halogen atom or methyl group, R8 represents a halogen atom, methyl group, trifluoromethyl group, methoxy group or a hydrogen atom, R9 represents a hydrogen atom, halogen atom, hydroxyl group, lower alkyl group, cycloalkyl group which may contain a hetero 20 atom(s) in the ring thereof, lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof,<br><br> 136<br><br> lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogenoalkoxyl group, lower halogenoalkylthio group, nitro group, cyano group, amino group, amino group substituted with a lower alkyl group(s), trialkylammonium group, methanesulfonyl amino group and tetrazolyl group.<br><br>
10. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 9,wherein, in the general formula (1), D represents the formula (4-1), and in the formula (4-1), R13 and R8 represent a chlorine atom, and R9 represents a hydrogen atom, halogen atom, hydroxyl group, lower alkyl group, cycloalkyl group which may contain a hetero atom(s) in the ring thereof, lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogenoalkoxyl group, lower halogenoalkylthio group, nitro group, cyano group, amino group, amino group substituted with a lower alkyl group(s) or trialkylammonium group.<br><br>
11. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 1,wherein, in the general formula (1), C represents a hydrogen atom and T is C(=0).<br><br>
12. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 1,wherein, in the general formula (1), A represents the following formulae (3-4) or (3-5):<br><br> (3-4)<br><br> (3-5)<br><br> 137<br><br> wherein Arm and Rl to R4 are the same as those described in claim 1, and the composite line of solid line and dotted line in the formula (3-5) represents a single bond or a double bond,<br><br> D represents the following formulae (4-1), (4-2), (4-3) or (4-4):<br><br> (4-1)<br><br> (4-2)<br><br> (4-3)<br><br> wherein R13 represents a halogen atom or methyl group, R8 represents a halogen atom, methyl group, trifluoromethyl group, methoxy group or a hydrogen atom, R9 represents a hydrogen atom, halogen atom, hydroxyl 10 group, lower alkyl group, cycloalkyl group which may contain a hetero atom(s) in the ring thereof, lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogenoalkoxyl group, lower halogenoalkylthio group, nitro group, 15 cyano group, amino group, amino group substituted with a lower alkyl group(s), trialkylammonium group, methanesulfonyl amino group and tetrazolyl group, B represents a hydroxyl group or a lower alkoxyl group, C represents a hydrogen atom, J and J' represent a hydrogen group and T is C(=0).<br><br> 20
13. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 12, wherein, in the general formula (1), A represents the formula (3-4), Arm is a benzene ring, pyridine ring,<br><br> 138<br><br> pyrazole ring or cyclohexane ring, Rl is a lower alkyl group, R2, R3 and R4 may be the same or different from one another and each represent a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, a lower alkoxyl group, a lower alkylthio group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a nitro group, a cyano group, an amino group, an amino group substituted with a lower alkyl group(s) or a trialkylammonium group, D represents the following formula (4-1),<br><br> in the formula (4-1), R13 and R8 represent a chlorine atom, and R9 represents a hydrogen atom, halogen atom, hydroxyl group, lower alkyl group, cycloalkyl group which may contain a hetero atom(s) in the ring thereof, lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogenoalkoxyl group, lower halogenoalkylthio group, nitro group, cyano group, amino group, amino group substituted with a lower alkyl group(s) or trialkylammonium group,<br><br> B represents a hydroxyl group or a lower alkoxyl group, C represents a<br><br> R13<br><br> R8<br><br> (4-1)<br><br> 139<br><br> hydrogen atom, J and J' represent a hydrogen group and T is C(=0).
14. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 6, wherein, in the general formula (1), A represents the formula (3-3), and in the formula (3-3), U represents C(=0) 5 or C(=S), Rl represents a lower alkyl group, R2, R3 and R4 may be the same or different from one another and each represent a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, a lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero 10 atom(s) in the ring thereof, a lower alkoxyl group, a lower alkylthio group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a nitro group, a cyano group, an amino group, an amino group substituted with a lower alkyl group (s) or a trialkylammonium group, C represents a hydrogen atom, D represents 15 the formula (4-1), (4-2), (4-3) or (4-4),<br><br> R13<br><br> r- *<br><br> R R ri_J<br><br> VR8 R8<br><br> (4-2) (4-3) (4-4)<br><br> wherein R13 represents a halogen atom or methyl group, R8 represents a halogen atom, methyl group, trifluoromethyl group, methoxy group or a 20 hydrogen atom, R9 represents a hydrogen atom, halogen atom, hydroxyl group, lower alkyl group, cycloalkyl group which may contain a hetero<br><br> 140<br><br> atom(s) in the ring thereof, lower alkyl group substituted with a cycloalkyl group(s) which may contain a hetero atom(s) in the ring thereof, lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogenoalkoxyl group, lower halogenoalkylthio group, nitro group, 5 cyano group, amino group, amino group substituted with a lower alkyl group(s), trialkylammonium group, methanesulfonyl amino group and tetrazolyl group, and T represents C(=0).<br><br>
15. The phenylalanine derivatives or pharmaceutically acceptable salts thereof according to claim 14, wherein, in the general formula (1), A 10 represents the formula (3-3), and in the formula (3-3), U represents C(=0) or C(=S), Rl represents a methyl group or ethyl group, R2, R3 and R4 may be the same or different from one another and each represent a hydrogen atom, a halogen atom, a hydroxyl group, a lower alkyl group, a cycloalkyl group which may contain a hetero atom(s) in the ring thereof, a lower 15 alkoxyl group, a lower alkylthio group, a lower halogenoalkyl group, a lower halogenoalkoxyl group, a lower halogenoalkylthio group, a nitro group, a cyano group, an amino group, an amino group substituted with a lower alkyl group(s) or a trialkylammonium group,<br><br> B represents a hydroxyl group or a lower alkoxyl group, C represents a 20 hydrogen atom, D represents the formula (4-1), wherein R13 and R8 represent a chlorine atom, and R9 represents a hydrogen atom, halogen atom, hydroxyl group, lower alkyl group, cycloalkyl group which may contain a hetero atom(s) in the ring thereof, lower alkoxyl group, lower alkylthio group, lower halogenoalkyl group, lower halogenoalkoxyl group, 25 lower halogenoalkylthio group, nitro group, cyano group, amino group, amino group substituted with a lower alkyl group(s) or trialkylammonium<br><br> 141<br><br> group, T is C(=0) and each of J and J' is a hydrogen atom.<br><br>
16. The phenylalanine derivatives of the following formula or pharmaceutically acceptable salts thereof according to claim 1:<br><br> wherein Rl represents a methyl group or ethyl group, R8 represents a halogen atom or methyl group, RIO represents a hydrogen atom or a lower alkyl group, Rll and R12 may be the same or different from each other and each represents a hydrogen atom, methyl group, ethyl group or propyl group, Rll and R12 may be bonded together to form a ring, and in that case, R11-R12 represent trimethylene, tetramethylene or pentamethylene.<br><br>
17. The phenylalanine derivatives of the following formula or pharmaceutically acceptable salts thereof according to claim 1:<br><br> Rl<br><br> 142<br><br> 143<br><br> 1<br><br> 144<br><br>
18. An a 4 integrin antagonist containing a phenylalanine derivative or a pharmaceutically acceptable salt thereof according to any of claims 1 to 17 as an active ingredient.<br><br> 145<br><br>
19. A therapeutic agent or preventive agent for inflammatory diseases in which a 4 integrin-depending adhesion process participates in the pathology, which contains a phenylalanine derivative or a pharmaceutically acceptable salt thereof according to any of claims 1 to 17 as an active ingredient.<br><br>
20. A pharmaceutical composition containing a phenylalanine derivative or a pharmaceutically acceptable salt thereof according to any of claims 1 to 17 as an active ingredient.<br><br>
21. A therapeutic agent or preventive agent for rheumatoid arthritis, inflammatory bowel diseases, systemic lupus erythematosus, multiple sclerosis, Sjogren's syndrome, asthma, psoriasis, allergy, diabetes, cardiovascular diseases, arterial sclerosis, restenosis, tumor proliferation, tumor metastasis arid transplantation rejection, which contains a phenylalanine derivative or a pharmaceutically acceptable salt thereof according to any of claims 1 to 17 as an active ingredient.<br><br>
22. A phenylalanine derivative according to claim 1 as specifically set forth herein. 9<br><br>
23. A phenylalanine derivative according to claim 1 substantially as herein described with reference to any one of Examples 1 to 215.<br><br>
24. An a 4 integrin antagonist according to claim 18 substantially as herein described with reference to any example thereof.<br><br>
25. A therapeutic agent according to claim 19 or claim 21 substantially as herein described with reference to any one of Examples 1 to 215.<br><br>
26. A pharmaceutical composition according to claim 20 substantially as herein described with reference to any one of Examples 1 to 215.<br><br> INTELLECTUAL PROPERTY OFFICE OF N.Z.<br><br> 146<br><br> -1 DEC 2004 RECEIVED<br><br> </p> </div>
NZ524122A 2000-08-18 2001-08-15 Phenylalanine derivatives useful as pharmaceutical agents NZ524122A (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
JP2000248728 2000-08-18
JP2001147451 2001-05-17
PCT/JP2001/007039 WO2002016329A1 (en) 2000-08-18 2001-08-15 Novel phenylalanine derivatives

Publications (1)

Publication Number Publication Date
NZ524122A true NZ524122A (en) 2005-02-25

Family

ID=26598103

Family Applications (1)

Application Number Title Priority Date Filing Date
NZ524122A NZ524122A (en) 2000-08-18 2001-08-15 Phenylalanine derivatives useful as pharmaceutical agents

Country Status (27)

Country Link
US (4) US7153963B2 (en)
EP (1) EP1288205B1 (en)
JP (1) JP3440469B2 (en)
KR (1) KR100675036B1 (en)
CN (1) CN1325480C (en)
AT (1) ATE497385T1 (en)
AU (2) AU2001278740B9 (en)
BG (1) BG66085B1 (en)
BR (1) BRPI0113331B8 (en)
CA (1) CA2420040C (en)
CZ (1) CZ302653B6 (en)
DE (1) DE60143984D1 (en)
DK (1) DK1288205T3 (en)
HU (1) HU228914B1 (en)
IL (2) IL154350A0 (en)
MX (1) MXPA03001495A (en)
NO (1) NO325738B1 (en)
NZ (1) NZ524122A (en)
PL (1) PL223152B1 (en)
PT (1) PT1288205E (en)
RU (1) RU2286340C2 (en)
SI (1) SI1288205T1 (en)
SK (1) SK287781B6 (en)
TW (1) TWI229077B (en)
UA (1) UA74385C2 (en)
WO (1) WO2002016329A1 (en)
YU (1) YU12203A (en)

Families Citing this family (53)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6960597B2 (en) 2000-06-30 2005-11-01 Orth-Mcneil Pharmaceutical, Inc. Aza-bridged-bicyclic amino acid derivatives as α4 integrin antagonists
WO2002016329A1 (en) * 2000-08-18 2002-02-28 Ajinomoto Co., Inc. Novel phenylalanine derivatives
AU2001290303A1 (en) 2000-09-29 2002-04-15 Ajinomoto Co., Inc. Novel phenylalanine derivatives
JP4164871B2 (en) * 2001-07-26 2008-10-15 味の素株式会社 Novel phenylpropionic acid derivatives
WO2003053926A1 (en) * 2001-12-13 2003-07-03 Ajinomoto Co.,Inc. Novel phenylalanine derivative
AU2003211560A1 (en) * 2002-02-20 2003-09-09 Ajinomoto Co., Inc. Novel phenylalanine derivative
CN100436429C (en) * 2003-02-20 2008-11-26 味之素株式会社 Methods for producing phenylalanine derivatives having a quinazolinedione skeleton and intermediates for production thereof
EP3216449A1 (en) 2003-11-14 2017-09-13 EA Pharma Co., Ltd. Oral administration preparation of phenylalanine derivatives
JP4780522B2 (en) * 2003-11-14 2011-09-28 味の素株式会社 Solid dispersion of phenylalanine derivative or solid dispersion pharmaceutical preparation
CN1886385B (en) * 2003-11-27 2013-02-27 味之素株式会社 Crystals of phenylalanine derivatives and production methods thereof
EP2615087A3 (en) * 2003-12-22 2013-08-07 Ajinomoto Co., Inc. Phenylalanine derivatives
US7618981B2 (en) * 2004-05-06 2009-11-17 Cytokinetics, Inc. Imidazopyridinyl-benzamide anti-cancer agents
US20060024295A1 (en) * 2004-06-04 2006-02-02 Genentech, Inc. Method for treating lupus
BRPI0510915A (en) 2004-06-04 2007-11-13 Genentech Inc Method for treating multiple sclerosis and manufactured article
KR20080024536A (en) * 2005-06-21 2008-03-18 아지노모토 가부시키가이샤 Crystal of phenylalanine derivative, process for producing the same and use thereof
CN101360736A (en) * 2005-11-23 2009-02-04 阿斯利康(瑞典)有限公司 L-alanine derivatives
ZA200805192B (en) 2005-12-29 2009-11-25 Lexicon Pharmaceuticals Inc Multicyclic amino acid derivatives and methods of their use
AR059224A1 (en) 2006-01-31 2008-03-19 Jerini Ag COMPOUNDS FOR THE INHIBITION OF INTEGRINS AND USE OF THESE
UY30244A1 (en) * 2006-03-30 2007-11-30 Tanabe Seiyaku Co A PROCESS TO PREPARE DERIVATIVES OF TETRAHYDROQUINOLINE
AR060901A1 (en) 2006-05-12 2008-07-23 Jerini Ag HETEROCICLICAL COMPOUNDS FOR THE INHIBITION OF INTEGRINS AND USE OF THESE
WO2007141473A1 (en) * 2006-06-09 2007-12-13 Astrazeneca Ab N-(benzoyl)-o- [2- (pyridin- 2 -ylamino) ethyl] -l-tyrosine derivatives and related compounds as a5b1 antagonists for the treatment of solid tumors
US7879837B2 (en) 2006-06-19 2011-02-01 Toray Industries, Inc. Therapeutic or prophylactic agent for multiple sclerosis
US7893046B2 (en) * 2006-06-20 2011-02-22 Toray Industries, Inc. Therapeutic or prophylactic agent for leukemia
EP2103601B1 (en) * 2006-11-22 2012-03-14 Ajinomoto Co., Inc. Process for production of phenylalanine derivatives having quinazolinedione skeletons and intermediates for the production
WO2008093065A1 (en) * 2007-01-29 2008-08-07 Astrazeneca Ab L-ALANINE DERIVATIVES AS α5βL ANTAGONISTS
CA2714335A1 (en) 2007-02-20 2008-08-28 Merrimack Pharmaceuticals, Inc. Methods of treating multiple sclerosis by administration of alpha-fetoprotein in combination with an integrin antagonist
WO2008125811A1 (en) * 2007-04-11 2008-10-23 Astrazeneca Ab N-[HETEROARYLCARBONYL]-S-THIENYL-L-ALANINE DERIVATIVES AS α5β1 ANTAGONISTS
ES2525065T3 (en) 2008-04-11 2014-12-17 Merrimack Pharmaceuticals, Inc. Human serum albumin linkers and their conjugates
TW201014605A (en) 2008-09-16 2010-04-16 Genentech Inc Methods for treating progressive multiple sclerosis
KR20110112301A (en) 2008-11-18 2011-10-12 메리맥 파마슈티컬즈, 인크. Human serum albumin linkers and conjugates thereof
WO2010075249A2 (en) 2008-12-22 2010-07-01 Genentech, Inc. A method for treating rheumatoid arthritis with b-cell antagonists
WO2011122620A1 (en) 2010-03-29 2011-10-06 味の素株式会社 Pharmaceutical preparation comprising phenylalanine derivative
JP6109568B2 (en) * 2010-03-29 2017-04-05 Eaファーマ株式会社 Salt crystals of phenylalanine derivatives
EP2769222A1 (en) 2011-10-17 2014-08-27 Westfälische Wilhelms-Universität Münster Methods of risk assessment of pml and related apparatus
WO2013101771A2 (en) 2011-12-30 2013-07-04 Genentech, Inc. Compositions and method for treating autoimmune diseases
AR091305A1 (en) 2012-01-31 2015-01-28 Genentech Inc ANTI-IgE ANTIBODIES AND THEIR METHODS OF USE
MX351225B (en) * 2012-04-24 2017-10-05 Ea Pharma Co Ltd Sulfonamide derivative and medicinal use thereof.
WO2014036520A1 (en) 2012-08-30 2014-03-06 Merrimack Pharmaceuticals, Inc. Combination therapies comprising anti-erbb3 agents
MX370666B (en) * 2013-06-11 2019-12-19 Celgene Int Ii Sarl Novel glp-1 receptor modulators.
EP3052515A4 (en) 2013-09-30 2017-03-15 The Regents of the University of California Anti-alphavbeta1 integrin compounds and methods
MX2016005528A (en) * 2013-10-29 2016-10-03 Ea Pharma Co Ltd Sulfonamide derivative and medicinal use thereof.
JP6580053B2 (en) * 2014-09-29 2019-09-25 Eaファーマ株式会社 Pharmaceutical composition for the treatment of ulcerative colitis
US10307535B2 (en) 2014-12-19 2019-06-04 Medtronic Minimed, Inc. Infusion devices and related methods and systems for preemptive alerting
US10214522B2 (en) 2015-03-10 2019-02-26 The Regents Of The University Of California Anti-alphavbeta1 integrin inhibitors and methods of use
KR20180075537A (en) 2015-10-06 2018-07-04 제넨테크, 인크. Methods for treating multiple sclerosis
ES2856125T3 (en) 2016-02-05 2021-09-27 Ea Pharma Co Ltd Sulfonamide derivative and pharmaceutical composition containing the same
EP3810085A1 (en) 2018-06-20 2021-04-28 Progenity, Inc. Treatment of a disease of the gastrointestinal tract with an integrin inhibitor
WO2020092383A1 (en) 2018-10-30 2020-05-07 Gilead Sciences, Inc. Compounds for inhibition of alpha 4 beta 7 integrin
KR20240015737A (en) 2018-10-30 2024-02-05 길리애드 사이언시즈, 인코포레이티드 Quinoline derivatives as alpha4beta7 integrin inhibitors
US11174256B2 (en) 2018-10-30 2021-11-16 Gilead Sciences, Inc. Imidazopyridine derivatives
EP3873605A1 (en) 2018-10-30 2021-09-08 Gilead Sciences, Inc. Compounds for inhibition of alpha4beta7 integrin
US11578069B2 (en) 2019-08-14 2023-02-14 Gilead Sciences, Inc. Compounds for inhibition of α4 β7 integrin
WO2022072156A1 (en) 2020-10-01 2022-04-07 Orthotrophix, Inc. Hard tissue therapeutics

Family Cites Families (30)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2419928A1 (en) 1978-03-15 1979-10-12 Metabio Joullie Sa NEW DERIVATIVES OF N-PHENYLALANINE, THEIR PREPARATION AND THEIR APPLICATION AS MEDICINAL PRODUCTS
DE4111394A1 (en) 1991-04-09 1992-10-15 Behringwerke Ag AMIDINOPHENYLALANINE DERIVATIVES, METHOD FOR THE PRODUCTION THEREOF, THE USE THEREOF AND MEANS THEREOF
US6306840B1 (en) 1995-01-23 2001-10-23 Biogen, Inc. Cell adhesion inhibitors
HU914U (en) 1995-04-19 1996-10-28 Koevesi Machine tool for contour turning
PT968194E (en) 1997-02-28 2004-08-31 Pfizer Prod Inc ATROPISOMERS OF 3-ARYL-4 (3H) -QUINAZOLINONES AND THEIR USE AS ANTAGONISTS OF AMPA RECEPTORS
AU756696B2 (en) 1997-07-31 2003-01-23 Elan Pharmaceuticals, Inc. Substituted phenylalanine type compounds which inhibit leukocyte adhesion mediated by VLA-4
EP0994896A1 (en) * 1997-07-31 2000-04-26 Elan Pharmaceuticals, Inc. Sulfonylated dipeptide compounds which inhibit leukocyte adhesion mediated by vla-4
JP3727536B2 (en) 1997-08-22 2005-12-14 エフ.ホフマン−ラ ロシュ アーゲー N-alkanoylphenylalanine derivatives
PT1005445E (en) * 1997-08-22 2004-09-30 Hoffmann La Roche N-ALCANOYLPHENYL ANALINE DERIVATIVES
US6197794B1 (en) * 1998-01-08 2001-03-06 Celltech Therapeutics Limited Phenylalanine derivatives
MY153569A (en) 1998-01-20 2015-02-27 Mitsubishi Tanabe Pharma Corp Inhibitors of ?4 mediated cell adhesion
US6329372B1 (en) * 1998-01-27 2001-12-11 Celltech Therapeutics Limited Phenylalanine derivatives
DE69919334T2 (en) 1998-02-26 2005-08-04 Celltech Therapeutics Ltd., Slough PHENYLALANINE DERIVATIVES AS INHIBITORS OF ALPHA4 INTEGRINEN
GB2354440A (en) 1999-07-20 2001-03-28 Merck & Co Inc Aryl amides as cell adhesion inhibitors
ATE355269T1 (en) 1999-11-18 2006-03-15 Ajinomoto Kk PHENYLALANINE DERIVATIVES
BR0016195A (en) 1999-12-06 2002-08-13 Hoffmann La Roche 4-pyrimidinyl-n-acyl-1-phenylalanines
WO2001042215A1 (en) 1999-12-06 2001-06-14 F. Hoffmann-La Roche Ag 4-pyridinyl-n-acyl-l-phenylalanines
WO2001047868A1 (en) 1999-12-28 2001-07-05 Ajinomoto Co., Inc. Novel phenylalanine derivatives
AU2001242743A1 (en) 2000-03-23 2001-10-03 Ajinomoto Co. Inc. Novel phenylalanine derivative
US6960597B2 (en) 2000-06-30 2005-11-01 Orth-Mcneil Pharmaceutical, Inc. Aza-bridged-bicyclic amino acid derivatives as α4 integrin antagonists
WO2002016329A1 (en) 2000-08-18 2002-02-28 Ajinomoto Co., Inc. Novel phenylalanine derivatives
MY129000A (en) 2000-08-31 2007-03-30 Tanabe Seiyaku Co INHIBITORS OF a4 MEDIATED CELL ADHESION
AU2001290303A1 (en) 2000-09-29 2002-04-15 Ajinomoto Co., Inc. Novel phenylalanine derivatives
JP4164871B2 (en) 2001-07-26 2008-10-15 味の素株式会社 Novel phenylpropionic acid derivatives
WO2003053926A1 (en) 2001-12-13 2003-07-03 Ajinomoto Co.,Inc. Novel phenylalanine derivative
AU2003211560A1 (en) 2002-02-20 2003-09-09 Ajinomoto Co., Inc. Novel phenylalanine derivative
CN100436429C (en) 2003-02-20 2008-11-26 味之素株式会社 Methods for producing phenylalanine derivatives having a quinazolinedione skeleton and intermediates for production thereof
CN1886385B (en) 2003-11-27 2013-02-27 味之素株式会社 Crystals of phenylalanine derivatives and production methods thereof
EP2615087A3 (en) 2003-12-22 2013-08-07 Ajinomoto Co., Inc. Phenylalanine derivatives
KR20080024536A (en) 2005-06-21 2008-03-18 아지노모토 가부시키가이샤 Crystal of phenylalanine derivative, process for producing the same and use thereof

Also Published As

Publication number Publication date
DK1288205T3 (en) 2011-05-23
NO325738B1 (en) 2008-07-14
CN1325480C (en) 2007-07-11
US20030220268A1 (en) 2003-11-27
NO20030744D0 (en) 2003-02-17
CA2420040A1 (en) 2003-02-18
BR0113331B1 (en) 2017-11-14
KR20030048011A (en) 2003-06-18
US8426588B2 (en) 2013-04-23
NO20030744L (en) 2003-04-07
UA74385C2 (en) 2005-12-15
SK1912003A3 (en) 2003-07-01
CZ302653B6 (en) 2011-08-17
EP1288205B1 (en) 2011-02-02
US7153963B2 (en) 2006-12-26
YU12203A (en) 2006-03-03
PL361383A1 (en) 2004-10-04
US8222405B2 (en) 2012-07-17
AU2001278740B9 (en) 2006-09-28
CA2420040C (en) 2009-02-03
HUP0302997A2 (en) 2004-01-28
KR100675036B1 (en) 2007-01-29
HUP0302997A3 (en) 2004-03-29
WO2002016329A1 (en) 2002-02-28
US20120253041A1 (en) 2012-10-04
BG66085B1 (en) 2011-03-31
DE60143984D1 (en) 2011-03-17
EP1288205A1 (en) 2003-03-05
CZ2003481A3 (en) 2003-06-18
BG107555A (en) 2003-09-30
JP3440469B2 (en) 2003-08-25
AU2001278740B2 (en) 2006-04-06
US20060223836A1 (en) 2006-10-05
CN1469867A (en) 2004-01-21
IL154350A0 (en) 2003-09-17
US7872125B2 (en) 2011-01-18
AU7874001A (en) 2002-03-04
SI1288205T1 (en) 2011-05-31
SK287781B6 (en) 2011-09-05
PL223152B1 (en) 2016-10-31
PT1288205E (en) 2011-05-06
TWI229077B (en) 2005-03-11
HU228914B1 (en) 2013-06-28
RU2286340C2 (en) 2006-10-27
EP1288205A4 (en) 2007-05-23
BRPI0113331B8 (en) 2021-05-25
US20110065918A1 (en) 2011-03-17
MXPA03001495A (en) 2003-06-06
BR0113331A (en) 2004-02-25
IL154350A (en) 2010-02-17
ATE497385T1 (en) 2011-02-15

Similar Documents

Publication Publication Date Title
AU2001278740B2 (en) Novel phenylalanine derivatives
EP1477482B1 (en) Novel phenylalanine derivative
US7759388B2 (en) Phenylalanine derivatives
US7250516B2 (en) Phenylalanine derivatives
US7193108B2 (en) Phenylpropionic acid derivatives
EP1270547A1 (en) Novel phenylalanine derivative
ES2360597T3 (en) NEW DERIVATIVES OF PHENYLALANINE.

Legal Events

Date Code Title Description
S38A Application for proceedings under section 38 (amendment of specification with leave of commissioner)

Free format text: BY WAY OF EXPLANATION

PSEA Patent sealed
S38C Proceedings under section 38 (amendment of specification with leave of commissioner): specification amended
RENW Renewal (renewal fees accepted)
RENW Renewal (renewal fees accepted)
RENW Renewal (renewal fees accepted)
RENW Renewal (renewal fees accepted)

Free format text: PATENT RENEWED FOR 7 YEARS UNTIL 15 AUG 2021 BY CPA GLOBAL

Effective date: 20140703

ASS Change of ownership

Owner name: EA PHARMA CO., LTD., JP

Effective date: 20160630

EXPY Patent expired